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Human Anatomy and Physiology: 27. Development and Inheritance

Human Anatomy and Physiology
27. Development and Inheritance
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table of contents
  1. Cover
  2. Acknowledgements
  3. Part 1. Levels of Organization
    1. 1. An Introduction to the Human Body
      1. 1.1 Overview of Anatomy and Physiology
      2. 1.2 Structural Organization of the Human Body
      3. 1.3 Functions of Human Life
      4. 1.4 Homeostasis
      5. 1.5 Anatomical Terminology
    2. 2. The Chemical Level of Organization
      1. 2.1 Elements and Atoms: The Building Blocks of Matter
      2. 2.2 Chemical Bonds
      3. 2.3 Chemical Reactions
      4. 2.4 Inorganic Compounds Essential to Human Functioning
      5. 2.5 Organic Compounds Essential to Human Functioning
    3. 3. The Cellular Level of Organization
      1. 3.1 The Cell Membrane
      2. 3.2 The Cytoplasm and Cellular Organelles
      3. 3.3 The Nucleus and DNA Replication
      4. 3.4 Protein Synthesis
      5. 3.5 Cell Growth and Division
      6. 3.6 Cellular Differentiation
    4. 4. The Tissue Level of Organization
      1. 4.1 Types of Tissues
      2. 4.2 Epithelial Tissue
      3. 4.3 Connective Tissue Supports and Protects
      4. 4.4 Muscle Tissue and Motion
      5. 4.5 Nervous Tissue Mediates Perception and Response
  4. Part 2. Support and Movement
    1. 5. The Integumentary System
      1. 5.1 Layers of the Skin
      2. 5.2 Accessory Structures of the Skin
      3. 5.3 Functions of the Integumentary System
    2. 6. Bone Tissue and the Skeletal System
      1. 6.1 The Functions of the Skeletal System
      2. 6.2 Bone Classification
      3. 6.3 Bone Structure
      4. 6.4 Bone Formation and Development
      5. 6.5 Fractures: Bone Repair
      6. 6.6 Nutrition, Hormones, and Bone Tissue
      7. 6.7 Calcium Homeostasis: Interactions of the Skeletal System and Other Organ Systems
    3. 7. Axial Skeleton
      1. 7.1 Divisions of the Skeletal System
      2. 7.2 The Skull
      3. 7.3 The Vertebral Column
      4. 7.4 The Thoracic Cage
      5. 7.5 Embryonic Development of the Axial Skeleton
    4. 8. The Appendicular Skeleton
      1. 8.1 The Pectoral Girdles
      2. 8.2 Bones of the Upper Limb
      3. 8.3 The Pelvic Girdle and Pelvis
      4. 8.4 Bones of the Lower Limb
    5. 9. Joints
      1. 9.1 Classification of Joints
      2. 9.2 Fibrous Joints
      3. 9.3 Cartilaginous Joints
      4. 9.4 Synovial Joints
      5. 9.5 Types of Body Movements
      6. 9.6 Anatomy of Selected Synovial Joints
    6. 10. Muscle Tissue
      1. 10.1 Overview of Muscle Tissues
      2. 10.2 Skeletal Muscle
      3. 10.3 Muscle Fibre Contraction and Relaxation
      4. 10.4 Nervous System Control of Muscle Tension
      5. 10.5 Types of Muscle Fibres
      6. 10.6 Cardiac Muscle Tissue
      7. 10.7 Smooth Muscle
    7. 11. The Muscular System
      1. 11.1 Interactions of Skeletal Muscles, Their Fascicle Arrangement, and Their Lever Systems
      2. 11.2 Naming Skeletal Muscles
      3. 11.3 Axial Muscles of the Head, Neck, and Back
      4. 11.4 Axial Muscles of the Abdominal Wall and Thorax
      5. 11.5 Muscles of the Pectoral Girdle and Upper Limbs
      6. 11.6 Appendicular Muscles of the Pelvic Girdle and Lower Limbs
  5. Part 3. Regulation, Integration, and Control
    1. 12. The Nervous System and Nervous Tissue
      1. 12.1 Basic Structure and Function of the Nervous System
      2. 12.2 Nervous Tissue
      3. 12.3 The Functions of Nervous Tissue
      4. 12.4 The Action Potential
      5. 12.5 Communication Between Neurons
    2. 13. Anatomy of the Nervous System
      1. 13.1 The Central Nervous System
      2. 13.2 Circulation and the Central Nervous System
      3. 13.3 The Peripheral Nervous System
    3. 14. The Somatic Nervous System
      1. 14.1 Sensory Perception
      2. 14.2 Central Processing
      3. 14.3 Motor Responses
    4. 15. The Autonomic Nervous System
      1. 15.1 Divisions of the Autonomic Nervous System
      2. 15.2 Autonomic Reflexes and Homeostasis
      3. 15.3 Central Control
    5. 16. The Endocrine System
      1. 16.1 An Overview of the Endocrine System
      2. 16.2 Hormones
      3. 16.3 The Pituitary Gland and Hypothalamus
      4. 16.4 The Thyroid Gland
      5. 16.5 The Parathyroid Glands
      6. 16.6 The Adrenal Glands
      7. 16.7 The Pineal Gland
      8. 16.8 Gonadal and Placental Hormones
      9. 16.9 The Endocrine Pancreas
      10. 16.10 Organs with Secondary Endocrine Functions
  6. Part 4. Fluids and Transport
    1. 17. The Cardiovascular System: Blood
      1. 17.1 An Overview of Blood
      2. 17.2 Production of the Formed Elements
      3. 17.3 Erythrocytes
      4. 17.4 Leukocytes and Platelets
      5. 17.5 Hemostasis
      6. 17.6 Blood Typing
    2. 18. The Cardiovascular System: The Heart
      1. 18.1 Heart Anatomy
      2. 18.2 Cardiac Muscle and Electrical Activity
      3. 18.3 Cardiac Cycle
      4. 18.4 Cardiac Physiology
    3. 19. The Cardiovascular System: Blood Vessels and Circulation
      1. 19.1 Structure and Function of Blood Vessels
      2. 19.2 Blood Flow, Blood Pressure, and Resistance
      3. 19.3 Capillary Exchange
      4. 19.4 Homeostatic Regulation of the Vascular System
      5. 19.5 Circulatory Pathways
      6. 19.6 Development of Blood Vessels and Fetal Circulation
    4. 20. The Lymphatic and Immune System
      1. 20.1 Anatomy of the Lymphatic and Immune Systems
      2. 20.2 Barrier Defences and the Innate Immune Response
      3. 20.3 The Adaptive Immune Response: T Lymphocytes and Their Functional Types
      4. 20.4 The Adaptive Immune Response: B Lymphocytes and Antibodies
  7. Part 5. Energy, Maintenance, and Environmental Exchange
    1. 21. The Respiratory System
      1. 21.1 Organs and Structures of the Respiratory System
      2. 21.2 The Lungs
      3. 21.3 The Process of Breathing
      4. 21.4 Gas Exchange
      5. 21.5 Transport of Gases
    2. 22. The Digestive System
      1. 22.1 Overview of the Digestive System
      2. 22.2 Digestive System Processes and Regulation
      3. 22.3 The Mouth, Pharynx, and Esophagus
      4. 22.4 The Stomach
      5. 22.5 The Small and Large Intestines
      6. 22.6 Accessory Organs in Digestion: The Liver, Pancreas, and Gallbladder
      7. 22.7 Chemical Digestion and Absorption: A Closer Look
    3. 23. Metabolism and Nutrition
      1. 23.1 Overview of Metabolic Reactions
      2. 23.2 Carbohydrate Metabolism
      3. 23.3 Lipid Metabolism
      4. 23.4 Protein Metabolism
      5. 23.5 Metabolic States of the Body
      6. 23.6 Energy and Heat Balance
      7. 23.7 Nutrition and Diet
    4. 24. The Urinary System
      1. 24.1 Physical Characteristics of Urine
      2. 24.2 Gross Anatomy of Urine Transport
      3. 24.3 Gross Anatomy of the Kidney
      4. 24.4 Microscopic Anatomy of the Kidney
      5. 24.5 Physiology of Urine Formation
      6. 24.6 Tubular Reabsorption
      7. 24.7 Regulation of Renal Blood Flow
      8. 24.8 Endocrine Regulation of Kidney Function
      9. 24.9 The Urinary System and Homeostasis
    5. 25. Fluid, Electrolyte, and Acid-Base Balance
      1. 25.1 Body Fluids and Fluid Compartments
      2. 25.2 Water Balance
      3. 25.3 Electrolyte Balance
      4. 25.4 Acid-Base Balance
      5. 25.5 Disorders of Acid-Base Balance
  8. Part 6. Human Development and the Continuity of Life
    1. 26. The Reproductive System
      1. 26.1 Anatomy and Physiology of the Testicular Reproductive System
      2. 26.2 Anatomy and Physiology of the Ovarian Reproductive System
    2. 27. Development and Inheritance
      1. 27.1 Fertilization
      2. 27.2 Embryonic Development
      3. 27.3 Fetal Development
      4. 27.4 Changes During Pregnancy, Labour, and Birth
      5. 27.5 Adjustments of the Infant at Birth and Postnatal Stages
      6. 27.6 Lactation
  9. Glossary
  10. Figure Descriptions

Chapter27 Development and Inheritance

Chapter Objectives

After studying this chapter, you will be able to:

  • • List and explain the steps involved in fertilization
  • • Describe the major events in embryonic development
  • • Describe the major events in fetal development
  • • Discuss the adaptations of the body to pregnancy
  • • Summarize the physiology of lactation

In approximately 9 months, a single cell—a fertilized egg—develops into a fully formed infant consisting of trillions of cells with myriad specialized functions. The dramatic changes of fertilization, embryonic development, and fetal development are followed by remarkable adaptations of the newborn to life outside the womb. An offspring’s normal development depends on the appropriate synthesis of structural and functional proteins. This, in turn, is governed by the genetic material inherited from the egg and sperm as well as environmental factors.

27.1 Fertilization

Learning Objectives

By the end of this section, you will be able to:

  • • Describe the obstacles that sperm must overcome to reach an oocyte
  • • Explain capacitation and its importance in fertilization
  • • Summarize the events that occur as a sperm fertilizes an oocyte

Fertilization occurs when a sperm and an oocyte (egg) combine and their nuclei fuse. Because each of these reproductive cells is a haploid cell containing half of the genetic material needed to form a human being, their combination forms a diploid cell. This new single cell, called a zygote, contains all of the genetic material needed to form a human—half from each biological parent.

Transit of Sperm

Fertilization is a numbers game. During ejaculation, hundreds of millions of sperm (spermatozoa) are released into the vagina. Almost immediately, millions of these sperm are overcome by the acidity of the vagina (approximately pH 3.8), and millions more may be blocked from entering the uterus by thick cervical mucus. Of those that do enter, thousands are destroyed by phagocytic uterine leukocytes. Thus, the race into the uterine tubes, which is the most typical site for sperm to encounter the oocyte, is reduced to a few thousand contenders. Their journey—thought to be facilitated by uterine contractions—usually takes from 30 minutes to 2 hours. If the sperm do not encounter an oocyte immediately, they can survive in the uterine tubes for another 3–5 days. Thus, fertilization can still occur if intercourse takes place a few days before ovulation. In comparison, an oocyte can survive independently for only approximately 24 hours following ovulation. Intercourse more than a day after ovulation will therefore usually not result in fertilization.

During the journey, fluids in the female reproductive tract prepare the sperm for fertilization through a process called capacitation, or priming. The fluids improve the motility of the spermatozoa. They also deplete cholesterol molecules embedded in the membrane of the head of the sperm, thinning the membrane in such a way that will help facilitate the release of the lysosomal (digestive) enzymes needed for the sperm to penetrate the oocyte’s exterior once contact is made. Sperm must undergo the process of capacitation in order to have the “capacity” to fertilize an oocyte. If they reach the oocyte before capacitation is complete, they will be unable to penetrate the oocyte’s thick outer layer of cells.

Contact Between Sperm and Oocyte

Upon ovulation, the oocyte released by the ovary is swept into—and along—the uterine tube. Fertilization must occur in the distal uterine tube because an unfertilized oocyte cannot survive the 72-hour journey to the uterus. As you will recall from your study of oogenesis, this oocyte (specifically a secondary oocyte) is surrounded by two protective layers. The corona radiata is an outer layer of follicular (granulosa) cells that form around a developing oocyte in the ovary and remain with it upon ovulation. The underlying zona pellucida is a transparent, but thick, glycoprotein membrane that surrounds the cell’s plasma membrane.

As it is swept along the distal uterine tube, the oocyte encounters the surviving capacitated sperm, which stream toward it in response to chemical attractants released by the cells of the corona radiata. To reach the oocyte itself, the sperm must penetrate the two protective layers. The sperm first burrow through the cells of the corona radiata. Then, upon contact with the zona pellucida, the sperm bind to receptors in the zona pellucida. This initiates a process called the acrosomal reaction, in which the enzyme-filled “cap” of the sperm, called the acrosome, releases its stored digestive enzymes. These enzymes clear a path through the zona pellucida that allows sperm to reach the oocyte. Finally, a single sperm makes contact with sperm-binding receptors on the oocyte’s plasma membrane (Figure 27.1). The plasma membrane of that sperm then fuses with the oocyte’s plasma membrane, and the head and mid-piece of the “winning” sperm enter the oocyte interior.

How do sperm penetrate the corona radiata? Some sperm undergo a spontaneous acrosomal reaction, which is an acrosomal reaction not triggered by contact with the zona pellucida. The digestive enzymes released by this reaction digest the extracellular matrix of the corona radiata. As you can see, the first sperm to reach the oocyte is never the one to fertilize it. Rather, hundreds of sperm cells must undergo the acrosomal reaction, each helping degrade the corona radiata and zona pellucida until a path is created to allow one sperm to contact and fuse with the plasma membrane of the oocyte. If you consider the loss of millions of sperm between entry into the vagina and degradation of the zona pellucida, you can understand why a low sperm count can cause male infertility.

When the first sperm fuses with the oocyte, the oocyte deploys two mechanisms to prevent polyspermy, which is penetration by more than one sperm. This is critical because if more than one sperm were to fertilize the oocyte, the resulting zygote would be a triploid organism with three sets of chromosomes. This is incompatible with life.

Figure 27.1 is a diagram of the process of fertilization, showing three main steps in which sperm interact with the oocyte. Refer to the extended description for more details.

Figure 27.1 Sperm and the Process of Fertilization. Before fertilization, hundreds of capacitated sperm must break through the surrounding corona radiata and zona pellucida so that one can contact and fuse with the oocyte plasma membrane.

Extended description

The first mechanism is the fast block, which involves a near instantaneous change in sodium ion permeability upon binding of the first sperm, depolarizing the oocyte plasma membrane and preventing the fusion of additional sperm cells. The fast block sets in almost immediately and lasts for about a minute, during which time an influx of calcium ions following sperm penetration triggers the second mechanism, the slow block. In this process, referred to as the cortical reaction, cortical granules sitting immediately below the oocyte plasma membrane fuse with the membrane and release zonal inhibiting proteins and mucopolysaccharides into the space between the plasma membrane and the zona pellucida. Zonal inhibiting proteins cause the release of any other attached sperm and destroy the oocyte’s sperm receptors, thus preventing any more sperm from binding. The mucopolysaccharides then coat the nascent zygote in an impenetrable barrier that, together with the hardened zona pellucida, is called a fertilization membrane.

The Zygote

Recall that at the point of fertilization, the oocyte has not yet completed meiosis; all secondary oocytes remain arrested in metaphase of meiosis II until fertilization. Only upon fertilization does the oocyte complete meiosis. The unneeded complement of genetic material that results is stored in a second polar body that is eventually ejected. At this moment, the oocyte has become an ovum, the female haploid gamete. The two haploid nuclei derived from the sperm and oocyte and contained within the egg are referred to as pronuclei. They decondense, expand, and replicate their DNA in preparation for mitosis. The pronuclei then migrate toward each other, their nuclear envelopes disintegrate, and the male- and female-derived genetic material intermingles. This step completes the process of fertilization and results in a single-celled diploid zygote with all the genetic instructions it needs to develop into a human.

Most of the time, a person releases a single egg during an ovulation cycle. However, in approximately 1 percent of ovulation cycles, two eggs are released and both are fertilized. Two zygotes form, implant, and develop, resulting in the birth of dizygotic (or fraternal) twins. Because dizygotic twins develop from two eggs fertilized by two sperm, they are no more identical than siblings born at different times.

Much less commonly, a zygote can divide into two separate offspring during early development. This results in the birth of monozygotic (or identical) twins. Although the zygote can split as early as the two-cell stage, splitting occurs most commonly during the early blastocyst stage, with roughly 70–100 cells present. These two scenarios are distinct from each other in that the twin embryos that separated at the two-cell stage will have individual placentas, whereas twin embryos that form from separation at the blastocyst stage will share a placenta and a chorionic cavity.

Interactive Link 27.1

Go to this site (http://oer.aupress.ca/oer-202505/27.1) to view resources covering various aspects of fertilization, including movies and animations showing sperm structure and motility, ovulation, and fertilization.

27.2 Embryonic Development

Learning Objectives

By the end of this section, you will be able to:

  • • Distinguish the stages of embryonic development that occur before implantation
  • • Describe the process of implantation
  • • List and describe four embryonic membranes
  • • Explain gastrulation
  • • Describe how the placenta is formed and identify its functions
  • • Explain how an embryo transforms from a flat disc of cells into a three-dimensional shape resembling a human
  • • Summarize the process of organogenesis

Throughout this chapter, we will express embryonic and fetal ages in terms of weeks from fertilization, commonly called conception. The period of time required for full development of a fetus in utero is referred to as gestation. It can be subdivided into distinct gestational periods. The first 2 weeks of prenatal development are referred to as the preembryonic stage. A developing human is referred to as an embryo during weeks 3–8, and a fetus from the ninth week of gestation until birth. In this section, we’ll cover the preembryonic and embryonic stages of development, which are characterized by cell division, migration, and differentiation. By the end of the embryonic period, all of the organ systems are structured in rudimentary form, although the organs themselves are either nonfunctional or only semifunctional.

Preimplantation Embryonic Development

Following fertilization, the zygote and its associated membranes, together referred to as the conceptus, continue to be projected toward the uterus by peristalsis and beating cilia of the epithelial cells of the fallopian tube. During its journey to the uterus, the zygote undergoes five or six rapid mitotic cell divisions. Although each cleavage results in more cells, it does not increase the total volume of the conceptus (Figure 27.2). Each daughter cell produced by cleavage is called a blastomere.

Approximately 3 days after fertilization, a 16-cell conceptus reaches the uterus. The cells that had been loosely grouped are now compacted and look more like a solid mass. The name given to this structure is the morula. Once inside the uterus, the conceptus floats freely for several more days. It continues to divide, creating a ball of approximately 100 cells and consuming nutritive endometrial secretions called uterine milk while the uterine lining thickens.

Figure 27.2 is a diagram showing six stages of early embryonic development. Cleavage begins in the uterine tube with the two-cell, four-cell, and eight-cell stages. As division continues, a 16-cell morula forms, followed by a blastocyst of 70 to 100 cells once in the uterus. The blastocyst consists of an inner cell mass and a surrounding trophoblast layer with a fluid-filled cavity called the blastocoel.

Figure 27.2 Preembryonic Cleavages. Preembryonic cleavages make use of the abundant cytoplasm of the conceptus as the cells rapidly divide without changing the total volume.

The ball of now tightly bound cells starts to secrete fluid and organize around a fluid-filled cavity, the blastocoel. At this developmental stage, the conceptus is referred to as a blastocyst. Within this structure, a group of cells forms into an inner cell mass, which is fated to become the embryo. The cells that form the outer shell (trophoblast) are called trophoblasts. These cells will develop into the chorionic sac and the fetal portion of the placenta (the organ of nutrient, waste, and gas exchange between a pregnant person and the developing offspring).

The inner mass of embryonic cells is totipotent during this stage, meaning that each cell has the potential to differentiate into any cell type in the human body. Totipotency lasts for only a few days before the cells’ fates are set as being the precursors to a specific lineage of cells.

As the blastocyst forms, the trophoblast secretes enzymes that begin to degrade the zona pellucida. In a process called “hatching,” the conceptus breaks free of the zona pellucida in preparation for implantation.

Interactive Link 27.2

Visit this link (http://oer.aupress.ca/oer-202505/27.2) to view a time-lapse movie of a conceptus starting at day 3. What is the first structure you see? At what point in the movie does the blastocoel first appear? What event occurs at the end of the movie?

Implantation

At the end of the first week, the blastocyst comes in contact with the uterine wall and adheres to it, embedding itself in the uterine lining via the trophoblast cells. Thus begins the process of implantation, which signals the end of the preembryonic stage of development (Figure 27.3). Implantation can be accompanied by minor bleeding. The blastocyst typically implants in the fundus of the uterus or on the posterior wall. However, if the endometrium is not fully developed and ready to receive the blastocyst, the blastocyst will detach and find a better spot. A significant percentage (50–75 percent) of blastocysts fail to implant; when this occurs, the blastocyst is shed with the endometrium during menses. The high rate of implantation failure is one reason why pregnancy typically requires several ovulation cycles to achieve.

Figure 27.3 is a diagram of the stages of early human development from fertilization to implantation. Refer to the extended description for more details.

Figure 27.3 Preembryonic Development. Ovulation, fertilization, preembryonic development, and implantation occur at specific locations within the female reproductive system in a time span of approximately 1 week.

Extended description

When implantation succeeds and the blastocyst adheres to the endometrium, the superficial cells of the trophoblast fuse with each other, forming the syncytiotrophoblast, a multinucleated body that digests endometrial cells to firmly secure the blastocyst to the uterine wall. In response, the uterine mucosa rebuilds itself and envelops the blastocyst (Figure 27.4). The trophoblast secretes human chorionic gonadotropin (hCG), a hormone that directs the corpus luteum to survive, enlarge, and continue producing progesterone and estrogen to suppress menses.

These functions of hCG are necessary for creating an environment suitable for the developing embryo. As a result of this increased production, hCG accumulates in the maternal bloodstream and is excreted in the urine. Implantation is complete by the middle of the second week. Just a few days after implantation, the trophoblast has secreted enough hCG for an at-home urine pregnancy test to give a positive result.

Most of the time an embryo implants within the body of the uterus in a location that can support growth and development. However, in 1 to 2 percent of cases, the embryo implants either outside the uterus (an ectopic pregnancy) or in a region of the uterus that can create complications for the pregnancy. If the embryo implants in the inferior portion of the uterus, the placenta can potentially grow over the opening of the cervix, a condition called placenta previa.

Embryonic Membranes

During the second week of development, with the embryo implanted in the uterus, cells within the blastocyst start to organize into layers. Some grow to form the extraembryonic membranes needed to support and protect the growing embryo: the amnion, the yolk sac, the allantois, and the chorion.

At the beginning of the second week, the cells of the inner cell mass form into a two-layered embryonic disc composed of embryonic cells, and a space—the amniotic cavity—opens up between it and the trophoblast (Figure 27.5). Cells from the upper layer of the disc extend around the amniotic cavity, creating a membranous sac that forms into the amnion by the end of the second week. The amnion fills with amniotic fluid and eventually grows to surround the embryo. Early in development, amniotic fluid consists almost entirely of a filtrate of maternal plasma, but as the kidneys of the fetus begin to function at approximately the eighth week, they add urine to the volume of amniotic fluid. Floating within the amniotic fluid, the embryo—and later, the fetus—is protected from trauma and rapid temperature changes. It can move freely within the fluid and can prepare for swallowing and breathing outside of the uterus.

Figure 27.4 is a diagram of the stages of implantation in the uterus. Refer to the extended description for more details.

Figure 27.4 Implantation. During implantation, the trophoblast cells of the blastocyst adhere to the endometrium and digest endometrial cells until it is attached securely.

Extended description

On the ventral side of the embryonic disc, opposite the amnion, cells in the lower layer of the embryonic disc extend into the blastocyst cavity and form a yolk sac. The yolk sac supplies some nutrients absorbed from the trophoblast and also provides primitive blood circulation to the developing embryo for the second and third weeks of development. When the placenta takes over nourishing the embryo at approximately week 4, the yolk sac has been greatly reduced in size, and its main function is to serve as the source of blood cells and germ cells (cells that will give rise to gametes). During week 3, a fingerlike outpocketing of the yolk sac develops into the allantois, a primitive excretory duct of the embryo that will become part of the urinary bladder. Together, the stalks of the yolk sac and allantois establish the outer structure of the umbilical cord.

Figure 27.5 is a diagram of an implanted blastocyst in the endometrium, highlighting key structures of early development. Refer to the extended description for more details.

Figure 27.5 Development of the Embryonic Disc. Formation of the embryonic disc leaves spaces on either side that develop into the amniotic cavity and the yolk sac.

Extended description

The last of the extraembryonic membranes is the chorion, which is the one membrane that surrounds all others. The development of the chorion will be discussed in more detail shortly, as it relates to the growth and development of the placenta.

Embryogenesis

As the third week of development begins, the two-layered disc of cells becomes a three-layered disc through the process of gastrulation, during which the cells transition from totipotency to multipotency. The embryo, which takes the shape of an oval-shaped disc, forms an indentation called the primitive streak along the dorsal surface of the epiblast. A node at the caudal or “tail” end of the primitive streak emits growth factors that direct cells to multiply and migrate. Cells migrate toward and through the primitive streak and then move laterally to create two new layers of cells. The first layer is the endoderm, a sheet of cells that displaces the hypoblast and lies adjacent to the yolk sac. The second layer of cells fills in as the middle layer, or mesoderm. The cells of the epiblast that remain (not having migrated through the primitive streak) become the ectoderm (Figure 27.6).

Figure 27.6 is a diagram of gastrulation. Refer to the extended description for more details.

Figure 27.6 Germ Layers. Formation of the three primary germ layers occurs during the first 2 weeks of development. The embryo at this stage is only a few millimetres in length.

Extended description

Each of the primary germ layers will develop into specific structures in the embryo. Whereas the ectoderm and endoderm form tightly connected epithelial sheets, the mesodermal cells are less organized and exist as a loosely connected cell community. The ectoderm gives rise to cell lineages that differentiate to become the central and peripheral nervous systems, sensory organs, epidermis, hair, and nails. Mesodermal cells ultimately become the skeleton, muscles, connective tissue, heart, blood vessels, and kidneys. The endoderm goes on to form the epithelial lining of the gastrointestinal tract, liver, and pancreas, as well as the lungs (Figure 27.7).

Figure 27.7 is a diagram showing a cross-section of an early embryo implanted in the endometrium, surrounded by extraembryonic membranes. Refer to the extended description for more details.

Figure 27.7 Fates of Germ Layers in Embryo. Following gastrulation of the embryo in the third week, embryonic cells of the ectoderm, mesoderm, and endoderm begin to migrate and differentiate into the cell lineages that will give rise to mature organs and organ systems in the infant.

Extended description

Development of the Placenta

During the first several weeks of development, the cells of the endometrium—referred to as decidual cells—nourish the nascent embryo. During prenatal weeks 4–12, the developing placenta gradually takes over the role of feeding the embryo, and the decidual cells are no longer needed. The mature placenta is composed of tissues derived from the embryo as well as maternal tissues of the endometrium. The placenta connects to the conceptus via the umbilical cord, which carries deoxygenated blood and wastes from the fetus through two umbilical arteries; nutrients and oxygen are carried from the pregnant person to the fetus through the single umbilical vein. The umbilical cord is surrounded by the amnion, and the spaces within the cord around the blood vessels are filled with Wharton’s jelly, a mucous connective tissue.

The maternal portion of the placenta develops from the deepest layer of the endometrium, the decidua basalis. To form the embryonic portion of the placenta, the syncytiotrophoblast and the underlying cells of the trophoblast (cytotrophoblast cells) begin to proliferate along with a layer of extraembryonic mesoderm cells. These form the chorionic membrane, which envelops the entire conceptus as the chorion. The chorionic membrane forms fingerlike structures called chorionic villi that burrow into the endometrium like tree roots, making up the fetal portion of the placenta. The cytotrophoblast cells perforate the chorionic villi, burrow farther into the endometrium, and remodel maternal blood vessels to augment maternal blood flow surrounding the villi. Meanwhile, fetal mesenchymal cells derived from the mesoderm fill the villi and differentiate into blood vessels, including the three umbilical blood vessels that connect the embryo to the developing placenta (Figure 27.8).

Figure 27.8 is a diagram of an implanted embryo in the uterus showing the developing placenta and associated structures in cross-section. Refer to the extended description for more details.

Figure 27.8 Cross Section of the Placenta. In the placenta, maternal and fetal blood components are conducted through the surface of the chorionic villi, but maternal and fetal bloodstreams never mix directly.

Extended description

The placenta develops throughout the embryonic period and during the first several weeks of the fetal period; placentation is complete by weeks 14–16. As a fully developed organ, the placenta provides nutrition and excretion, respiration, and endocrine functions.

It receives blood from the fetus through the two umbilical arteries. Capillaries in the chorionic villi filter fetal wastes out of the blood and return clean, oxygenated blood to the fetus through a single umbilical vein. Nutrients and oxygen are transferred from maternal blood surrounding the villi through the capillaries and into the fetal bloodstream. Some substances move across the placenta by simple diffusion. Oxygen, carbon dioxide, and any other lipid-soluble substances take this route. Other substances move across by facilitated diffusion. This includes water-soluble glucose. The fetus has a high demand for amino acids and iron, and those substances are moved across the placenta by active transport.

Maternal and fetal blood do not commingle because blood cells cannot move across the placenta. This separation prevents the pregnant person’s cytotoxic T cells from reaching and subsequently destroying the fetus, which bears “nonself” antigens. Further, it ensures the fetal red blood cells do not enter the pregnant person’s circulation and trigger antibody development (if they carry “nonself” antigens)—at least until the final stages of pregnancy or birth. This is the reason that, even in the absence of preventive treatment, an Rh− person doesn’t develop antibodies that could cause hemolytic disease in their first Rh+ fetus.

Although blood cells are not exchanged, the chorionic villi provide ample surface area for the two-way exchange of substances between maternal and fetal blood. The rate of exchange increases throughout gestation as the villi become thinner and increasingly branched. The placenta is permeable to lipid-soluble fetotoxic substances: alcohol, nicotine, barbiturates, antibiotics, certain pathogens, and many other substances that can be dangerous or fatal to the developing embryo or fetus. For these reasons, pregnant people should avoid fetotoxic substances.

Organogenesis

Following gastrulation, rudiments of the central nervous system develop from the ectoderm in the process of neurulation. Specialized neuroectodermal tissues along the length of the embryo thicken into the neural plate. During the fourth week, tissues on either side of the plate fold upward into a neural fold. The two folds converge to form the neural tube. The tube lies atop a rod-shaped, mesoderm-derived notochord, which eventually becomes the nucleus pulposus of intervertebral discs. Block-like structures called somites form on either side of the tube, eventually differentiating into the axial skeleton, skeletal muscle, and dermis. During the fourth and fifth weeks, the anterior neural tube dilates and subdivides to form vesicles that will become the brain structures.

The embryo, which begins as a flat sheet of cells, begins to acquire a cylindrical shape through the process of embryonic folding. The embryo folds laterally and again at either end, forming a C shape with distinct head and tail ends. The embryo envelops a portion of the yolk sac, which protrudes with the umbilical cord from what will become the abdomen. The folding essentially creates a tube, called the primitive gut, that is lined by the endoderm. The amniotic sac, which was sitting on top of the flat embryo, envelops the embryo as it folds. Within the first 8 weeks of gestation, a developing embryo establishes the rudimentary structures of all of its organs and tissues from the ectoderm, mesoderm, and endoderm. This process is called organogenesis.

The heart begins beating at the beginning of the fourth week, although it does not actually pump embryonic blood until a week later, when the oversized liver has begun producing red blood cells. During weeks 4–5, the eye pits form, limb buds become apparent, and the rudiments of the pulmonary system are formed. During the sixth week, uncontrolled fetal limb movements begin to occur. The gastrointestinal system develops too rapidly for the embryonic abdomen to accommodate it, and the intestines temporarily loop into the umbilical cord. Paddle-shaped hands and feet develop fingers and toes by the process of apoptosis (programmed cell death), which causes the tissues between the fingers to disintegrate. By week 7, the facial structure is more complex and includes nostrils, outer ears, and lenses. By the eighth week, the head is nearly as large as the rest of the embryo’s body, and all major brain structures are in place. The external genitalia are apparent, but at this point, male and female embryos are indistinguishable. Bone begins to replace cartilage in the embryonic skeleton through the process of ossification. By the end of the embryonic period, the embryo is approximately 3 cm from crown to rump and weighs approximately 8 g.

Interactive Link 27.3

Watch this video (http://oer.aupress.ca/oer-202505/27.3) to view the process of embryogenesis from fertilization through pregnancy to birth. Can you identify when neurulation occurs in the embryo?

27.3 Fetal Development

Learning Objectives

By the end of this section, you will be able to:

  • • Differentiate between the embryonic period and the fetal period
  • • Briefly describe the process of sexual differentiation
  • • Describe the fetal circulatory system and explain the role of the shunts
  • • Trace the development of a fetus from the end of the embryonic period to birth

As you will recall, a developing human is called a fetus from the ninth week of gestation until birth. This 30-week period of development is marked by continued cell growth and differentiation, which fully develop the structures and functions of the immature organ systems formed during the embryonic period. The completion of fetal development results in a newborn who, although still immature in many ways, is capable of survival outside the womb.

Sexual Differentiation

Sexual differentiation does not begin until the fetal period, during weeks 9–12. Embryonic males and females, though genetically distinguishable, are morphologically identical. Bipotential gonads, or gonads that can develop into male or female sexual organs, are connected to a central cavity called the cloaca via Müllerian ducts and Wolffian ducts. (The cloaca is an extension of the primitive gut.) Several events lead to sexual differentiation during this period.

During male fetal development, the bipotential gonads become the testes and associated epididymis. The Müllerian ducts degenerate. The Wolffian ducts become the vas deferens, and the cloaca becomes the urethra and rectum.

During female fetal development, the bipotential gonads develop into ovaries. The Wolffian ducts degenerate. The Müllerian ducts become the uterine tubes and uterus, and the cloaca divides and develops into a vagina, a urethra, and a rectum.

The Fetal Circulatory System

During prenatal development, the fetal circulatory system is integrated with the placenta via the umbilical cord so that the fetus receives both oxygen and nutrients from the placenta. However, after childbirth, the umbilical cord is severed, and the newborn’s circulatory system must be reconfigured. When the heart first forms in the embryo, it exists as two parallel tubes derived from mesoderm and lined with endothelium, which then fuse together. As the embryo develops into a fetus, the tube-shaped heart folds and further differentiates into the four chambers present in a mature heart. Unlike a mature cardiovascular system, however, the fetal cardiovascular system also includes circulatory shortcuts, or shunts. A shunt is an anatomical (or sometimes surgical) diversion that allows blood flow to bypass immature organs such as the lungs and liver until childbirth.

The placenta provides the fetus with necessary oxygen and nutrients via the umbilical vein. (Remember that veins carry blood toward the heart. In this case, the blood flowing to the fetal heart is oxygenated because it comes from the placenta. The respiratory system is immature and cannot yet oxygenate blood on its own.) From the umbilical vein, the oxygenated blood flows toward the inferior vena cava, all but bypassing the immature liver, via the ductus venosus shunt (Figure 27.9). The liver receives just a trickle of blood, which is all that it needs in its immature, semifunctional state. Blood flows from the inferior vena cava to the right atrium, mixing with fetal venous blood along the way.

Although the fetal liver is semifunctional, the fetal lungs are nonfunctional. The fetal circulation therefore bypasses the lungs by shifting some of the blood through the foramen ovale, a shunt that directly connects the right and left atria and avoids the pulmonary trunk altogether. Most of the rest of the blood is pumped to the right ventricle and, from there, into the pulmonary trunk, which splits into pulmonary arteries. However, a shunt within the pulmonary artery, the ductus arteriosus, diverts a portion of this blood into the aorta. This ensures that only a small volume of oxygenated blood passes through the immature pulmonary circuit, which has only minor metabolic requirements. Blood vessels of uninflated lungs have high resistance to flow, a condition that encourages blood to flow to the aorta, which presents much lower resistance. The oxygenated blood moves through the foramen ovale into the left atrium, where it mixes with the now deoxygenated blood returning from the pulmonary circuit. This blood then moves into the left ventricle, where it is pumped into the aorta. Some of this blood moves through the coronary arteries into the myocardium, and some moves through the carotid arteries to the brain.

Figure 27.9 is a diagram of fetal circulation, including the placenta, umbilical cord, and fetal heart. Refer to the extended description for more details.

Figure 27.9 Fetal Circulatory System. The fetal circulatory system includes three shunts to divert blood from undeveloped and partially functioning organs as well as blood supply to and from the placenta.

Extended description

The descending aorta carries partially oxygenated and partially deoxygenated blood into the lower regions of the body. It eventually passes into the umbilical arteries through branches of the internal iliac arteries. The deoxygenated blood collects waste as it circulates through the fetal body and returns to the umbilical cord. Thus, the two umbilical arteries carry blood low in oxygen and high in carbon dioxide and fetal wastes. This blood is filtered through the placenta, where wastes diffuse into the maternal circulation. Oxygen and nutrients from the pregnant person diffuse into the placenta and from there into the fetal blood, and the process repeats.

Other Organ Systems

During weeks 9–12 of fetal development, the brain continues to expand, the body elongates, and ossification continues. Fetal movements are frequent during this period but are jerky and not well controlled. The bone marrow begins to take over the process of erythrocyte production—a task that the liver performed during the embryonic period. The liver now secretes bile. The fetus circulates amniotic fluid by swallowing it and producing urine. The eyes are well developed by this stage, but the eyelids are fused shut. The fingers and toes begin to develop nails. By the end of week 12, the fetus measures approximately 9 cm (3.5 in) from crown to rump.

Weeks 13–16 are marked by sensory organ development. The eyes move closer together; blinking motions begin, although the eyes remain sealed shut. The lips exhibit sucking motions. The ears move upward and lie flatter against the head. The scalp begins to grow hair. The excretory system is also developing: The kidneys are well formed, and meconium, or fetal feces, begins to accumulate in the intestines. Meconium consists of ingested amniotic fluid, cellular debris, mucus, and bile.

During approximately weeks 16–20, as the fetus grows and limb movements become more powerful, the pregnant person may begin to feel quickening, or fetal movements. However, space restrictions limit these movements and typically force the growing fetus into the “fetal position,” with the arms crossed and the legs bent at the knees.

Sebaceous glands coat the skin with a waxy, protective substance called vernix caseosa that protects and moisturizes the skin and may provide lubrication during childbirth. A silky hair called lanugo also covers the skin during weeks 17–20, but it is shed as the fetus continues to grow. Extremely premature infants sometimes exhibit residual lanugo.

Developmental weeks 21–30 are characterized by rapid weight gain, which is important for maintaining a stable body temperature after birth. The bone marrow completely takes over erythrocyte synthesis, and the axons of the spinal cord begin to be myelinated, or coated in the electrically insulating glial cell sheaths that are necessary for efficient nervous system functioning. (The process of myelination is not completed until adolescence.) During this period, the fetus grows eyelashes. The eyelids are no longer fused and can be opened and closed. The lungs begin producing surfactant, a substance that reduces surface tension in the lungs and assists proper lung expansion after birth. Inadequate surfactant production in premature newborns may result in respiratory distress syndrome, and as a result, the newborn may require surfactant replacement therapy, supplemental oxygen, or maintenance in a continuous positive airway pressure (CPAP) chamber during their first days or weeks of life. In male fetuses, the testes descend into the scrotum near the end of this period. The fetus at 30 weeks measures 28 cm (11 in) from crown to rump and exhibits the approximate body proportions of a full-term newborn but still is much leaner.

Interactive Link 27.4

Visit this site (http://oer.aupress.ca/oer-202505/27.4) for a summary of the stages of pregnancy, as experienced by the pregnant person, and view the stages of development of the fetus throughout gestation. At what point in fetal development can a regular heartbeat be detected?

The fetus continues to lay down subcutaneous fat from week 31 until birth. The added fat fills out the hypodermis, and the skin transitions from red and wrinkled to soft and pink. Lanugo is shed, and the nails grow to the tips of the fingers and toes. Immediately before birth, the average crown-to-rump length is 35.5–40.5 cm (14–16 in), and the fetus weighs approximately 2.5–4 kg (5.5–8.8 lbs). Once born, the newborn is no longer confined to the fetal position, so subsequent measurements are made from head to toe instead of from crown to rump. At birth, the average length is approximately 51 cm (20 in).

27.4 Changes During Pregnancy, Labour, and Birth

Learning Objectives

By the end of this section, you will be able to:

  • • Explain how estrogen, progesterone, and hCG are involved in maintaining pregnancy
  • • List the contributors to weight gain during pregnancy
  • • Describe the major changes to the maternal digestive, circulatory, and integumentary systems during pregnancy
  • • Summarize the events leading to labour
  • • Identify and describe each of the three stages of childbirth

A full-term pregnancy lasts approximately 270 days (approximately 38.5 weeks) from conception to birth. Because it is easier to remember the first day of the last menstrual period (LMP) than to estimate the date of conception, obstetricians set the due date as 284 days (approximately 40.5 weeks) from the LMP. This assumes that conception occurred on day 14 of the menstrual cycle, which is usually a good approximation. The 40 weeks of an average pregnancy are usually discussed in terms of three trimesters, each approximately 13 weeks. During the second and third trimesters, the prepregnancy uterus—about the size of a fist—grows dramatically to contain the fetus, causing a number of anatomical changes in the pregnant person (Figure 27.10).

Figure 27.10 is a diagram of the growth of the uterus during pregnancy by the end of each trimester. At the end of the first trimester, the uterus is still located low in the pelvis. By the end of the second trimester, the uterus has expanded significantly upward into the abdominal cavity. At the end of the third trimester, the uterus extends much higher, approaching the ribcage.

Figure 27.10 Size of Uterus Throughout Pregnancy. The uterus grows throughout pregnancy to accommodate the fetus.

Effects of Hormones

Virtually all of the effects of pregnancy can be attributed in some way to the influence of hormones—particularly estrogens, progesterone, and hCG. During weeks 7–12 from the LMP, the pregnancy hormones are primarily generated by the corpus luteum. Progesterone secreted by the corpus luteum stimulates the production of decidual cells of the endometrium that nourish the blastocyst before placentation. As the placenta develops and the corpus luteum degenerates during weeks 12–17, the placenta gradually takes over as the endocrine organ of pregnancy.

The placenta converts weak androgens secreted by the maternal and fetal adrenal glands to estrogens, which are necessary for pregnancy to progress. Estrogen levels climb throughout the pregnancy, increasing 30-fold by childbirth. Estrogens have the following actions:

  • • They suppress FSH and LH production, effectively preventing ovulation. (This function is the biological basis of hormonal birth control pills.)
  • • They induce the growth of fetal tissues and are necessary for the maturation of the fetal lungs and liver.
  • • They promote fetal viability by regulating progesterone production and triggering fetal synthesis of cortisol, which helps with the maturation of the lungs, liver, and endocrine organs such as the thyroid gland and adrenal gland.
  • • They stimulate maternal tissue growth, leading to uterine enlargement and mammary duct expansion and branching.

Relaxin, another hormone secreted by the corpus luteum and then by the placenta, helps prepare the body for childbirth. It increases the elasticity of the symphysis pubis joint and pelvic ligaments, making room for the growing fetus and allowing expansion of the pelvic outlet for childbirth. Relaxin also helps dilate the cervix during labour.

The placenta takes over the synthesis and secretion of progesterone throughout pregnancy as the corpus luteum degenerates. Like estrogen, progesterone suppresses FSH and LH. It also inhibits uterine contractions, protecting the fetus from preterm birth. This hormone decreases in late gestation, allowing uterine contractions to intensify and eventually progress to true labour. The placenta also produces hCG. In addition to promoting survival of the corpus luteum, hCG stimulates the male fetal gonads to secrete testosterone, which is essential for the development of the male reproductive system.

The anterior pituitary enlarges and ramps up its hormone production during pregnancy, raising the levels of thyrotropin, prolactin, and adrenocorticotropic hormone (ACTH). Thyrotropin, in conjunction with placental hormones, increases the production of thyroid hormone, which raises the maternal metabolic rate. This can markedly augment a pregnant person’s appetite and cause hot flashes. Prolactin stimulates enlargement of the mammary glands in preparation for milk production. ACTH stimulates maternal cortisol secretion, which contributes to fetal protein synthesis. In addition to the pituitary hormones, increased parathyroid levels mobilize calcium from maternal bones for fetal use.

Weight Gain

The second and third trimesters of pregnancy are associated with dramatic changes in maternal anatomy and physiology. The most obvious anatomical sign of pregnancy is the dramatic enlargement of the abdominal region, coupled with weight gain. This weight results from the growing fetus as well as the enlarged uterus, amniotic fluid, and placenta. Additional breast tissue and dramatically increased blood volume also contribute to weight gain. Surprisingly, fat storage accounts for only approximately 2.3 kg (5 lbs) in a normal pregnancy and serves as a reserve for the increased metabolic demand of breastfeeding.

During the first trimester, a pregnant person does not need to consume additional calories to maintain a healthy pregnancy. However, a weight gain of approximately 0.45 kg (1 lb) per month is common. During the second and third trimesters, the appetite increases, but it is only necessary to consume an additional 300 calories per day to support the growing fetus. Most pregnant people gain approximately 0.45 kg (1 lb) per week.

Changes in Organ Systems During Pregnancy

As the body adapts to pregnancy, characteristic physiologic changes occur. These changes can sometimes prompt symptoms often referred to collectively as the common discomforts of pregnancy.

Digestive and Urinary System Changes

Nausea and vomiting, sometimes triggered by an increased sensitivity to odours, are common during the first few weeks to months of pregnancy. This phenomenon is often referred to as “morning sickness,” although the nausea may persist all day. The source of pregnancy nausea is thought to be the increased circulation of pregnancy-related hormones, specifically circulating estrogen, progesterone, and hCG. Decreased intestinal peristalsis may also contribute to nausea. By about week 12 of pregnancy, nausea typically subsides.

A common gastrointestinal complaint during the later stages of pregnancy is gastric reflux, or heartburn, which results from the upward, constrictive pressure of the growing uterus on the stomach. The same decreased peristalsis that may contribute to nausea in early pregnancy is also thought to be responsible for pregnancy-related constipation as pregnancy progresses.

The downward pressure of the uterus also compresses the urinary bladder, leading to frequent urination. The problem is exacerbated by increased urine production. In addition, the maternal urinary system processes both maternal and fetal wastes, further increasing the total volume of urine.

Circulatory System Changes

Blood volume increases substantially during pregnancy so that by childbirth, it exceeds its preconception volume by 30 percent, or approximately 1–2 L. The greater blood volume helps manage the demands of fetal nourishment and fetal waste removal. In conjunction with increased blood volume, the pulse and blood pressure also rise moderately during pregnancy. As the fetus grows, the uterus compresses underlying pelvic blood vessels, hampering venous return from the legs and pelvic region. As a result, many pregnant people develop varicose veins or hemorrhoids.

Respiratory System Changes

During the second half of pregnancy, the respiratory minute volume (volume of gas inhaled or exhaled by the lungs per minute) increases by 50 percent to compensate for the oxygen demands of the fetus and the increased maternal metabolic rate. The growing uterus exerts upward pressure on the diaphragm, decreasing the volume of each inspiration and potentially causing shortness of breath, or dyspnea. During the last several weeks of pregnancy, the pelvis becomes more elastic, and the fetus descends lower in a process called lightening. This typically ameliorates dyspnea.

The respiratory mucosa swells in response to increased blood flow during pregnancy, leading to nasal congestion and nose bleeds, particularly when the weather is cold and dry. Humidifier use and increased fluid intake are often recommended to counteract congestion.

Integumentary System Changes

The dermis stretches extensively to accommodate the growing uterus, breast tissue, and fat deposits on the thighs and hips. Torn connective tissue beneath the dermis can cause striae (stretch marks) on the abdomen, which appear as red or purple marks during pregnancy that fade to a silvery white colour in the months after childbirth.

An increase in melanocyte-stimulating hormone, in conjunction with estrogens, darkens the areolae and creates a line of pigment from the umbilicus to the pubis called the linea nigra.

Physiology of Labour

Childbirth, or parturition, typically occurs within a week of the due date, unless the pregnancy involves more than one fetus, which usually causes labour to begin early. As a pregnancy progresses into its final weeks, several physiological changes occur in response to hormones that trigger labour.

First, recall that progesterone inhibits uterine contractions throughout the first several months of pregnancy. As the pregnancy enters its seventh month, progesterone levels plateau and then drop. Estrogen levels, however, continue to rise in the maternal circulation (Figure 27.11). The increasing ratio of estrogen to progesterone makes the myometrium (the uterine smooth muscle) more sensitive to stimuli that promote contractions (because progesterone no longer inhibits them). Moreover, in the eighth month of pregnancy, fetal cortisol rises, which boosts estrogen secretion by the placenta and further overpowers the uterine-calming effects of progesterone. Some people may feel the result of the decreasing levels of progesterone in late pregnancy as weak and irregular peristaltic Braxton Hicks contractions, also called false labour. These contractions can often be relieved with rest or hydration.

Figure 27.11 is a graph showing changes in hormone levels during pregnancy over 40 weeks. Human chorionic gonadotropin rises sharply and peaks around week 10, then declines and levels off. Estrogens and progesterone gradually increase throughout pregnancy, with progesterone rising steadily and peaking near term, while estrogens surpass progesterone around week 24 and continue rising until week 40.

Figure 27.11 Hormones Initiating Labour. A positive feedback loop of hormones works to initiate labour.

A common sign that labour will be short is the so-called bloody show. During pregnancy, a plug of mucus accumulates in the cervical canal, blocking the entrance to the uterus. Approximately 1–2 days prior to the onset of true labour, this plug loosens and is expelled, along with a small amount of blood.

Meanwhile, the posterior pituitary has been boosting its secretion of oxytocin, a hormone that stimulates the contractions of labour. At the same time, the myometrium increases its sensitivity to oxytocin by expressing more receptors for this hormone. As labour nears, oxytocin begins to stimulate stronger, more painful uterine contractions, which—in a positive feedback loop—stimulate the secretion of prostaglandins from fetal membranes. Like oxytocin, prostaglandins also enhance uterine contractile strength. The fetal pituitary also secretes oxytocin, which increases prostaglandins even further. Given the importance of oxytocin and prostaglandins to the initiation and maintenance of labour, it is not surprising that when a pregnancy is not progressing to labour and needs to be induced, a pharmaceutical version of these compounds (called pitocin) is administered by intravenous drip.

Finally, stretching of the myometrium and cervix by a full-term fetus in the vertex (head-down) position is regarded as a stimulant to uterine contractions. The sum of these changes initiates the regular contractions known as true labour, which become more powerful and more frequent with time. The pain of labour is attributed to myometrial hypoxia during uterine contractions.

Stages of Childbirth

The process of childbirth can be divided into three stages: cervical dilation, expulsion of the newborn, and afterbirth (Figure 27.12).

Cervical Dilation

For vaginal birth to occur, the cervix must dilate fully to 10 cm in diameter—wide enough to deliver the newborn’s head. The dilation stage is the longest stage of labour and typically takes 6–12 hours. However, it varies widely and may take minutes, hours, or days, depending in part on whether the person has given birth before; in each subsequent labour, this stage tends to be shorter.

True labour progresses in a positive feedback loop in which uterine contractions stretch the cervix, causing it to dilate and efface, or become thinner. Cervical stretching induces reflexive uterine contractions that dilate and efface the cervix further. In addition, cervical dilation boosts oxytocin secretion from the pituitary, which in turn triggers more powerful uterine contractions. When labour begins, uterine contractions may occur only every 3–30 minutes and last only 20–40 seconds; however, by the end of this stage, contractions may occur as frequently as every 1.5–2 minutes and last for a full minute.

Each contraction sharply reduces oxygenated blood flow to the fetus. For this reason, it is critical that a period of relaxation occur after each contraction. Fetal distress, measured as a sustained decrease or increase in the fetal heart rate, can result from severe contractions that are too powerful or lengthy for oxygenated blood to be restored to the fetus. Such a situation can be cause for an emergency birth with vacuum or forceps or surgically by Cesarean section.

Figure 27.12 is a diagram showing the three stages of childbirth. Refer to the extended description for more details.

Figure 27.12 Stages of Childbirth. The stages of childbirth include Stage 1, early cervical dilation; Stage 2, full dilation and expulsion of the newborn; and Stage 3, delivery of the placenta and associated fetal membranes. (The position of the newborn’s shoulder is described relative to the person giving birth.)

Extended description

The amniotic membranes rupture before the onset of labour in about 12 percent of people; they typically rupture at the end of the dilation stage in response to excessive pressure from the fetal head entering the birth canal.

Expulsion Stage

The expulsion stage begins when the fetal head enters the birth canal and ends with the birth of the newborn. It typically takes up to 2 hours, but it can last longer or be completed in minutes, depending in part on the orientation of the fetus. The vertex presentation known as the occiput anterior vertex is the most common presentation and is associated with the greatest ease of vaginal birth. The fetus faces the maternal spinal cord, and the smallest part of the head (the posterior aspect called the occiput) exits the birth canal first.

In fewer than 5 percent of births, the infant is oriented in the breech presentation, or buttocks down. In a complete breech, both legs are crossed and oriented downward. In a frank breech presentation, the legs are oriented upward. Before the 1960s, it was common for breech presentations to be delivered vaginally. Today, most breech births are accomplished by Cesarean section.

Vaginal birth is associated with significant stretching of the vaginal canal, the cervix, and the perineum. Until recent decades, it was routine procedure for an obstetrician to numb the perineum and perform an episiotomy, an incision in the posterior vaginal wall and perineum. The perineum is now more commonly allowed to tear on its own during birth. Both an episiotomy and a perineal tear need to be sutured shortly after birth to ensure optimal healing.

Although suturing the jagged edges of a perineal tear may be more difficult than suturing an episiotomy, tears heal more quickly, are less painful, and are associated with less damage to the muscles around the vagina and rectum.

Upon birth of the newborn’s head, an obstetrician will aspirate mucus from the mouth and nose before the newborn’s first breath. Once the head is birthed, the rest of the body usually follows quickly. The umbilical cord is then double clamped, and a cut is made between the clamps. This completes the second stage of childbirth.

Afterbirth

The delivery of the placenta and associated membranes, commonly referred to as the afterbirth, marks the final stage of childbirth. After expulsion of the newborn, the myometrium continues to contract. This movement shears the placenta from the back of the uterine wall. It is then easily delivered through the vagina. Continued uterine contractions then reduce blood loss from the site of the placenta. Delivery of the placenta marks the beginning of the postpartum period—the period of approximately 6 weeks immediately following childbirth during which the body gradually returns to a nonpregnant state. If the placenta does not birth spontaneously within approximately 30 minutes, it is considered retained, and the obstetrician may attempt manual removal. If this is not successful, surgery may be required.

It is important that the obstetrician examines the expelled placenta and fetal membranes to ensure that they are intact. If fragments of the placenta remain in the uterus, they can cause postpartum hemorrhage. Uterine contractions continue for several hours after birth to return the uterus to its prepregnancy size in a process called involution, which also allows the abdominal organs to return to their prepregnancy locations. Breastfeeding facilitates this process.

Although postpartum uterine contractions limit blood loss from the detachment of the placenta, the person who has recently given birth does experience a postpartum vaginal discharge called lochia. This is made up of uterine lining cells, erythrocytes, leukocytes, and other debris. Thick, dark lochia rubra (red lochia) typically continues for 2–3 days, and is replaced by lochia serosa, a thinner pinkish form that continues until about the tenth postpartum day. After this period, a scant, creamy, or watery discharge called lochia alba (white lochia) may continue for another 1–2 weeks.

27.5 Adjustments of the Infant at Birth and Postnatal Stages

Learning Objectives

By the end of this section, you will be able to:

  • • Discuss the importance of an infant’s first breath
  • • Explain the closing of the cardiac shunts
  • • Describe thermoregulation in the newborn
  • • Summarize the importance of intestinal flora in the newborn

From a fetal perspective, the process of birth is a crisis. In the womb, the fetus was snuggled in a soft, warm, dark, and quiet world. The placenta provided nutrition and oxygen continuously. Suddenly, the contractions of labour and vaginal childbirth forcibly squeeze the fetus through the birth canal, limiting oxygenated blood flow during contractions and shifting the skull bones to accommodate the small space. After birth, the newborn’s system must make drastic adjustments to a world that is colder, brighter, and louder and where they will experience hunger and thirst. The neonatal period spans the first to the thirtieth day of life outside of the uterus.

Respiratory Adjustments

Although the fetus “practices” breathing by inhaling amniotic fluid in utero, there is no air in the uterus and thus no true opportunity to breathe. (There is also no need to breathe because the placenta supplies the fetus with all the oxygenated blood it needs.) During gestation, the partially collapsed lungs are filled with amniotic fluid and exhibit very little metabolic activity. Several factors stimulate newborns to take their first breath at birth. First, labour contractions temporarily constrict umbilical blood vessels, reducing oxygenated blood flow to the fetus and elevating carbon dioxide levels in the blood. High carbon dioxide levels cause acidosis and stimulate the respiratory centre in the brain, triggering the newborn to take a breath.

The first breath typically is taken within 10 seconds of birth, after mucus is aspirated from the infant’s mouth and nose. The first breaths inflate the lungs to nearly full capacity and dramatically decrease lung pressure and resistance to blood flow, causing a major circulatory reconfiguration. Pulmonary alveoli open, and alveolar capillaries fill with blood. Amniotic fluid in the lungs drains or is absorbed, and the lungs immediately take over the task of the placenta, exchanging carbon dioxide for oxygen by the process of respiration.

Circulatory Adjustments

The process of clamping and cutting the umbilical cord collapses the umbilical blood vessels. In the absence of medical assistance, this occlusion would occur naturally within 20 minutes of birth because the Wharton’s jelly within the umbilical cord would swell in response to the lower temperature outside of the mother’s body, and the blood vessels would constrict. Natural occlusion has occurred when the umbilical cord is no longer pulsating. For the most part, the collapsed vessels atrophy and become fibrotic remnants, existing in the mature circulatory system as ligaments of the abdominal wall and liver. The ductus venosus degenerates to become the ligamentum venosum beneath the liver. Only the proximal sections of the two umbilical arteries remain functional, taking on the role of supplying blood to the upper part of the bladder (Figure 27.13).

The newborn’s first breath is vital to initiate the transition from the fetal to the neonatal circulatory pattern. Inflation of the lungs decreases blood pressure throughout the pulmonary system as well as in the right atrium and ventricle. In response to this pressure change, the flow of blood temporarily reverses direction through the foramen ovale, moving from the left to the right atrium, and blocking the shunt with two flaps of tissue. Within 1 year, the tissue flaps usually fuse over the shunt, turning the foramen ovale into the fossa ovalis. The ductus arteriosus constricts as a result of increased oxygen concentration and becomes the ligamentum arteriosum. Closing of the ductus arteriosus ensures that all blood pumped to the pulmonary circuit will be oxygenated by the newly functional neonatal lungs.

Figure 27.13 is a diagram showing circulatory changes before and after birth. Refer to the extended description for more details.

Figure 27.13 Neonatal Circulatory System. A newborn’s circulatory system reconfigures immediately after birth. The three fetal shunts have been closed permanently, facilitating blood flow to the liver and lungs.

Extended description

Thermoregulatory Adjustments

The fetus floats in warm amniotic fluid that is maintained at a temperature of approximately 37°C with very little fluctuation. Birth exposes newborns to a cooler environment in which they have to regulate their own body temperature. Newborns have a higher ratio of surface area to volume than adults. This means that their body has less volume throughout which to produce heat and more surface area from which to lose heat. As a result, newborns produce heat more slowly and lose it more quickly. Newborns also have immature musculature that limits their ability to generate heat by shivering. Moreover, their nervous systems are underdeveloped, so they cannot quickly constrict superficial blood vessels in response to cold. They also have little subcutaneous fat for insulation. All these factors make it harder for newborns to maintain their body temperature.

Newborns, however, do have a special method for generating heat: nonshivering thermogenesis, which involves the breakdown of brown adipose tissue, or brown fat, which is distributed over the back, chest, and shoulders. Brown fat differs from the more familiar white fat in two ways:

  • • It is highly vascularized. This allows for faster delivery of oxygen, which leads to faster cellular respiration.
  • • It is packed with a special type of mitochondria that are able to engage in cellular respiration reactions that produce less ATP and more heat than standard cellular respiration reactions.

The breakdown of brown fat occurs automatically upon exposure to cold, so it is an important heat regulator in newborns. During fetal development, the placenta secretes inhibitors that prevent metabolism of brown adipose fat and promote its accumulation in preparation for birth.

Gastrointestinal and Urinary Adjustments

In adults, the gastrointestinal tract harbors bacterial flora—trillions of bacteria that aid in digestion, produce vitamins, and protect from the invasion or replication of pathogens. In stark contrast, the fetal intestine is sterile. The first consumption of breast milk or formula floods the neonatal gastrointestinal tract with beneficial bacteria that begin to establish the bacterial flora.

The fetal kidneys filter blood and produce urine, but the neonatal kidneys are still immature and inefficient at concentrating urine. Therefore, newborns produce very dilute urine, making it particularly important for infants to obtain sufficient fluids from breast milk or formula.

27.6 Lactation

Learning Objectives

By the end of this section, you will be able to:

  • • Describe the structure of the lactating breast
  • • Summarize the process of lactation
  • • Explain how the composition of breast milk changes during the first days of lactation and in the course of a single feeding

Lactation is the process by which milk is synthesized and secreted from the mammary glands of the postpartum female breast in response to an infant sucking at the nipple. Breast milk provides ideal nutrition and passive immunity for the infant, encourages mild uterine contractions to return the uterus to its prepregnancy size (i.e., involution), and induces a substantial metabolic increase in the postpartum person, consuming the fat reserves stored during pregnancy.

Structure of the Lactating Breast

Mammary glands are modified sweat glands. The nonpregnant and nonlactating female breast is composed primarily of adipose and collagenous tissue, with mammary glands making up a very minor proportion of breast volume. The mammary gland is composed of milk-transporting lactiferous ducts, which expand and branch extensively during pregnancy in response to estrogen, growth hormone, cortisol, and prolactin. Moreover, in response to progesterone, clusters of breast alveoli bud from the ducts and expand outward toward the chest wall. Breast alveoli are balloon-like structures lined with milk-secreting cuboidal cells, or lactocytes, that are surrounded by a net of contractile myoepithelial cells. Milk is secreted from the lactocytes, fills the alveoli, and is squeezed into the ducts. Clusters of alveoli that drain to a common duct are called lobules; the lactating female has 12–20 lobules organized radially around the nipple. Milk drains from lactiferous ducts into lactiferous sinuses that meet at 4 to 18 perforations in the nipple called nipple pores. The small bumps of the areola (the darkened skin around the nipple) are called Montgomery glands. They secrete oil to cleanse the nipple opening and prevent chapping and cracking of the nipple during breastfeeding.

The Process of Lactation

The pituitary hormone prolactin is instrumental in the establishment and maintenance of breast milk supply. It also is important for the mobilization of maternal micronutrients for breast milk.

Near the fifth week of pregnancy, the level of circulating prolactin begins to increase, eventually rising to approximately 10–20 times the prepregnancy concentration. We noted earlier that during pregnancy, prolactin and other hormones prepare the breasts anatomically for the secretion of milk. The level of prolactin plateaus in late pregnancy at a level high enough to initiate milk production. However, estrogen, progesterone, and other placental hormones inhibit prolactin-mediated milk synthesis during pregnancy. It is not until the placenta is expelled that this inhibition is lifted and milk production commences.

After childbirth, the baseline prolactin level drops sharply, but it is restored for a 1-hour spike during each feeding to stimulate the production of milk for the next feeding. With each prolactin spike, estrogen and progesterone also increase slightly.

When the infant suckles, sensory nerve fibres in the areola trigger a neuroendocrine reflex that results in milk secretion from lactocytes into the alveoli. The posterior pituitary releases, which stimulates myoepithelial cells to squeeze milk from the alveoli so it can drain into the lactiferous ducts, collect in the lactiferous sinuses, and discharge through the nipple pores. It takes less than 1 minute from the time when an infant begins suckling (the latent period) until milk is secreted (the letdown). Figure 27.14 summarizes the positive feedback loop of the letdown reflex.

The prolactin-mediated synthesis of milk changes with time. Frequent milk removal by breastfeeding (or pumping) will maintain high circulating prolactin levels for several months. However, even with continued breastfeeding, baseline prolactin will decrease over time to its prepregnancy level. In addition to prolactin and oxytocin, growth hormone, cortisol, parathyroid hormone, and insulin contribute to lactation, in part by facilitating the transport of maternal amino acids, fatty acids, glucose, and calcium to breast milk.

Figure 27.14 is a diagram of the milk ejection reflex during breastfeeding. Refer to the extended description for more details.

Figure 27.14 Letdown Reflex. A positive feedback loop ensures continued milk production as long as the infant continues to breastfeed.

Extended description

Changes in the Composition of Breast Milk

In the final weeks of pregnancy, the alveoli swell with colostrum, a thick, yellowish substance that is high in protein but contains less fat and glucose than mature breast milk. Before childbirth, some people experience leakage of colostrum from the nipples. In contrast, mature breast milk does not leak during pregnancy and is not secreted until several days after childbirth.

Colostrum is secreted during the first 48–72 hours postpartum. Only a small volume of colostrum is produced—approximately 88 mL in a 24-hour period—but it is sufficient for the newborn in the first few days of life. Colostrum is rich with immunoglobulins, which confer gastrointestinal, and also likely systemic, immunity as the newborn adjusts to a nonsterile environment.

After about the third postpartum day, the breast secretes transitional milk that represents an intermediate between mature milk and colostrum. This is followed by mature milk from approximately postpartum day 10. Cow’s milk is not a substitute for breast milk. It contains less lactose, less fat, and more protein and minerals. Moreover, the proteins in cow’s milk are difficult for an infant’s immature digestive system to metabolize and absorb.

The first few weeks of breastfeeding may involve leakage, soreness, and periods of milk engorgement as the relationship between milk supply and infant demand becomes established. Once this period is complete, the lactating person will produce approximately 1.5 L of milk per day for a single infant, and more if the person has twins or triplets. As the infant goes through growth spurts, the milk supply constantly adjusts to accommodate changes in demand. A person can continue to lactate for years, but once breastfeeding is stopped for approximately 1 week, any remaining milk will be reabsorbed; in most cases, no more will be produced, even if suckling or pumping is resumed.

Mature milk changes from the beginning to the end of a feeding. The early milk, called foremilk, is watery, translucent, and rich in lactose and protein. Its purpose is to quench the infant’s thirst. Hindmilk is delivered toward the end of a feeding. It is opaque, creamy, and rich in fat, and serves to satisfy the infant’s appetite.

During the first days of a newborn’s life, it is important for meconium to be cleared from the intestines and for bilirubin to be kept low in the circulation. Recall that bilirubin, a product of erythrocyte breakdown, is processed by the liver and secreted in bile. It enters the gastrointestinal tract and exits the body in the stool. Breast milk has laxative properties that help expel meconium from the intestines and clear bilirubin through the excretion of bile. A high concentration of bilirubin in the blood causes jaundice. Some degree of jaundice is normal in newborns, but a high level of bilirubin—which is neurotoxic—can cause brain damage. Newborns, who do not yet have a fully functional blood-brain barrier, are highly vulnerable to the bilirubin circulating in the blood. Indeed, hyperbilirubinemia, a high level of circulating bilirubin, is the most common condition requiring medical attention in newborns. Newborns with hyperbilirubinemia are treated with phototherapy because UV light helps break down the bilirubin quickly.

Key Terms

acrosomal reaction:
Release of digestive enzymes by sperm that enables them to burrow through the corona radiata and penetrate the zona pellucida of an oocyte prior to fertilization.
acrosome:
Cap-like vesicle located at the anterior-most region of a sperm that is rich with lysosomal enzymes capable of digesting the protective layers surrounding the oocyte.
afterbirth:
Third stage of childbirth in which the placenta and associated fetal membranes are expelled.
allantois:
Fingerlike outpocketing of yolk sac that forms the primitive excretory duct of the embryo; precursor to the urinary bladder.
amnion:
Transparent membranous sac that encloses the developing fetus and fills with amniotic fluid.
amniotic cavity:
Cavity that opens up between the inner cell mass and the trophoblast; develops into amnion.
amniotic fluid:
Filtrate of maternal plasma and urine.
blastocoel:
Fluid-filled cavity of the blastocyst.
blastocyst:
Term for the conceptus at the developmental stage that consists of about 100 cells shaped into an inner cell mass that is fated to become the embryo and an outer trophoblast that is fated to become the associated fetal membranes and placenta.
blastomere:
High-order daughter cell of a cleavage.
Braxton Hicks contractions:
Weak and irregular peristaltic contractions that can occur in the second and third trimesters; they do not indicate that childbirth is imminent.
brown adipose tissue:
Highly vascularized fat tissue packed with mitochondria; these properties confer the ability to oxidize fatty acids to generate heat.
capacitation:
Process that occurs in the female reproductive tract in which sperm are prepared for fertilization; leads to increased motility and changes in their outer membrane that improve their ability to release enzymes capable of digesting an oocyte’s outer layers.
chorion:
Membrane that develops from the syncytiotrophoblast, cytotrophoblast, and mesoderm; surrounds the embryo and forms the fetal portion of the placenta through the chorionic villi.
chorionic membrane:
Precursor to the chorion; forms from extraembryonic mesoderm cells.
chorionic villi:
Projections of the chorionic membrane that burrow into the endometrium and develop into the placenta.
cleavage:
Form of mitotic cell division in which the cell divides but the total volume remains unchanged; this process serves to produce smaller and smaller cells.
colostrum:
Thick, yellowish substance secreted from a mother’s breasts in the first postpartum days; rich in immunoglobulins.
conceptus:
Preimplantation stage of a fertilized egg and its associated membranes.
corona radiata:
In an oocyte, a layer of granulosa cells that surrounds the oocyte and that must be penetrated by sperm before fertilization can occur.
cortical reaction:
Following fertilization, the release of cortical granules from the oocyte’s plasma membrane into the zona pellucida, creating a fertilization membrane that prevents any further attachment or penetration of sperm; part of the slow block to polyspermy.
dilation:
First stage of childbirth, involving an increase in cervical diameter.
ductus arteriosus:
Shunt in the pulmonary trunk that diverts oxygenated blood back to the aorta.
ductus venosus:
Shunt that causes oxygenated blood to bypass the fetal liver on its way to the inferior vena cava.
ectoderm:
Primary germ layer that develops into the central and peripheral nervous systems, sensory organs, epidermis, hair, and nails.
ectopic pregnancy:
Implantation of an embryo outside of the uterus.
embryo:
Developing human during weeks 3–8.
embryonic disc:
Composed of embryonic cells and the amniotic cavity.
embryonic folding:
Process by which an embryo develops from a flat disc of cells to a three-dimensional shape resembling a cylinder.
endoderm:
Primary germ layer that goes on to form the gastrointestinal tract, liver, pancreas, and lungs.
expulsion:
Second stage of childbirth, during which the mother bears down with contractions; this stage ends in birth.
fertilization:
Unification of genetic material from male and female haploid gametes.
fertilization membrane:
Impenetrable barrier that coats a nascent zygote; part of the slow block to polyspermy.
fetus:
Developing human during the time from the end of the embryonic period (week 9) to birth.
foramen ovale:
Shunt that directly connects the right and left atria and helps divert oxygenated blood from the fetal pulmonary circuit.
gastrulation:
Process of cell migration and differentiation into three primary germ layers following cleavage and implantation.
gestation:
In human development, the period required for embryonic and fetal development in utero; pregnancy.
human chorionic gonadotropin (hCG):
Hormone that directs the corpus luteum to survive, enlarge, and continue producing progesterone and estrogen to suppress menses and secure an environment suitable for the developing embryo.
inner cell mass:
Cluster of cells within the blastocyst that is fated to become the embryo.
involution:
Postpartum shrinkage of the uterus back to its prepregnancy volume.
lactation:
Process by which milk is synthesized and secreted from the mammary glands of the postpartum female breast in response to sucking at the nipple.
lanugo:
Silk-like hairs that coat the fetus; shed later in fetal development.
letdown reflex:
Release of milk from the alveoli triggered by infant suckling.
meconium:
Fetal wastes consisting of ingested amniotic fluid, cellular debris, mucus, and bile.
mesoderm:
Primary germ layer that becomes the skeleton, muscles, connective tissue, heart, blood vessels, and kidneys.
morula:
Tightly packed sphere of blastomeres that has reached the uterus but has not yet implanted itself.
neural fold:
Elevated edge of the neural groove.
neural plate:
Thickened layer of neuroepithelium that runs longitudinally along the dorsal surface of an embryo and gives rise to nervous system tissue.
neural tube:
Precursor to structures of the central nervous system, formed by the invagination and separation of neuroepithelium.
neurulation:
Embryonic process that establishes the central nervous system.
raw output nonshivering thermogenesis:
Process of breaking down brown adipose tissue to produce heat in the absence of a shivering response.
notochord:
Rod-shaped, mesoderm-derived structure that provides support for the growing fetus.
organogenesis:
Development of the rudimentary structures of all of an embryo’s organs from the germ layers.
oxytocin:
Hormone released from the posterior pituitary gland that stimulates the contractions of labour.
parturition:
Childbirth.
placenta:
Organ that forms during pregnancy to nourish the developing fetus; also regulates waste and gas exchange between mother and fetus.
placenta previa:
Low placement of fetus within the uterus that causes the placenta to partially or completely cover the opening of the cervix as it grows.
placentation:
Formation of the placenta; complete by weeks 14–16 of pregnancy.
polyspermy:
Penetration of an oocyte by more than one sperm.
primary germ layers:
The endoderm, mesoderm, and ectoderm.
primitive streak:
Indentation along the dorsal surface of the epiblast through which cells migrate to form the endoderm and mesoderm during gastrulation.
prolactin:
Pituitary hormone that establishes and maintains the supply of breast milk; also important for the mobilization of maternal micronutrients for breast milk.
quickening:
Fetal movements that are strong enough to be felt by the mother.
shunt:
Circulatory shortcut that diverts the flow of blood from one region to another.
somite:
One of the paired, repeating blocks of tissue located on either side of the notochord in the early embryo.
syncytiotrophoblast:
Superficial cells of the trophoblast that fuse to form a multinucleated body that digests endometrial cells to firmly secure the blastocyst to the uterine wall.
trimester:
Division of the duration of a pregnancy into three 3-month terms.
trophoblast:
Fluid-filled shell of squamous cells destined to become the chorionic villi, placenta, and associated fetal membranes.
true labour:
Regular contractions that immediately precede childbirth; they do not abate with hydration or rest, and they become more frequent and powerful with time.
umbilical cord:
Connection between the developing conceptus and the placenta; carries deoxygenated blood and waste from the fetus and returns nutrients and oxygen from the mother.
vernix caseosa:
Waxy, cheese-like substance that protects the delicate fetal skin until birth.
yolk sac:
Membrane associated with primitive circulation to the developing embryo; source of the first blood cells and germ cells and contributes to the umbilical cord structure.
zona pellucida:
Thick, gel-like glycoprotein membrane that coats the oocyte and must be penetrated by sperm before fertilization can occur.
zygote:
Fertilized egg; a diploid cell resulting from the fertilization of haploid gametes from the male and female lines.

Chapter Review

27.1 Fertilization

Hundreds of millions of sperm deposited in the vagina travel toward the oocyte, but only a few hundred actually reach it. The number of sperm that reach the oocyte is greatly reduced because of conditions within the female reproductive tract. Many sperm are overcome by the acidity of the vagina, others are blocked by mucus in the cervix, whereas others are attacked by phagocytic leukocytes in the uterus. Those sperm that do survive undergo a change in response to those conditions. They go through the process of capacitation, which improves their motility and alters the membrane surrounding the acrosome, the cap-like structure in the head of a sperm that contains the digestive enzymes needed for it to attach to and penetrate the oocyte.

The oocyte that is released by ovulation is protected by a thick outer layer of granulosa cells known as the corona radiata and by the zona pellucida, a thick glycoprotein membrane that lies just outside the oocyte’s plasma membrane. When capacitated sperm make contact with the oocyte, they release the digestive enzymes in the acrosome (the acrosomal reaction) and are thus able to attach to the oocyte and burrow through to the oocyte’s zona pellucida. One of the sperm will then break through to the oocyte’s plasma membrane and release its haploid nucleus into the oocyte. The oocyte’s membrane structure changes in response (cortical reaction), preventing any further penetration by another sperm and forming a fertilization membrane. Fertilization is complete upon unification of the haploid nuclei of the two gametes, producing a diploid zygote.

27.2 Embryonic Development

As the zygote travels toward the uterus, it undergoes numerous cleavages in which the number of cells doubles (blastomeres). Upon reaching the uterus, the conceptus has become a tightly packed sphere of cells called the morula, which then forms into a blastocyst consisting of an inner cell mass within a fluid-filled cavity surrounded by trophoblasts. The blastocyst implants in the uterine wall, the trophoblasts fuse to form a syncytiotrophoblast, and the conceptus is enveloped by the endometrium. Four embryonic membranes form to support the growing embryo: the amnion, the yolk sac, the allantois, and the chorion.

The chorionic villi of the chorion extend into the endometrium to form the fetal portion of the placenta. The placenta supplies the growing embryo with oxygen and nutrients; it also removes carbon dioxide and other metabolic wastes.

Following implantation, embryonic cells undergo gastrulation, in which they differentiate and separate into an embryonic disc and establish three primary germ layers (the endoderm, mesoderm, and ectoderm). Through the process of embryonic folding, the fetus begins to take shape. Neurulation starts the process of the development of structures of the central nervous system, and organogenesis establishes the basic plan for all organ systems.

27.3 Fetal Development

The fetal period lasts from the ninth week of development until birth. During this period, male and female gonads differentiate. The fetal circulatory system becomes much more specialized and efficient than its embryonic counterpart. It includes three shunts—the ductus venosus, the foramen ovale, and the ductus arteriosus—that enable it to bypass the semifunctional liver and pulmonary circuit until after childbirth. The brain continues to grow, and its structures differentiate. Facial features develop, the body elongates, and the skeleton ossifies. In the womb, the developing fetus moves, blinks, practices sucking, and circulates amniotic fluid. The fetus grows from an embryo measuring approximately 3.3 cm (1.3 in) and weighing 7 g (0.25 oz) to an infant measuring approximately 51 cm (20 in) and weighing an average of approximately 3.4 kg (7.5 lbs). Embryonic organ structures that were primitive and nonfunctional develop to the point that the newborn can survive in the outside world.

27.4 Changes During Pregnancy, Labour, and Birth

Hormones (especially estrogens, progesterone, and hCG) secreted by the corpus luteum and later by the placenta are responsible for most of the changes experienced during pregnancy. Estrogen maintains the pregnancy, promotes fetal viability, and stimulates tissue growth in the mother and developing fetus.

Progesterone prevents new ovarian follicles from developing and suppresses uterine contractility.

Pregnancy weight gain primarily occurs in the breasts and abdominal region. Nausea, heartburn, and frequent urination are common during pregnancy.

Maternal blood volume increases by 30 percent during pregnancy, and respiratory minute volume increases by 50 percent. The skin may develop stretch marks, and melanin production may increase.

Toward the late stages of pregnancy, a drop in progesterone and stretching forces from the fetus lead to increasing uterine irritability and prompt labour.

Contractions serve to dilate the cervix and expel the newborn. Delivery of the placenta and associated fetal membranes follows.

27.5 Adjustments of the Infant at Birth and Postnatal Stages

The first breath a newborn takes at birth inflates the lungs and dramatically alters the circulatory system, closing the three shunts that directed oxygenated blood away from the lungs and liver during fetal life. Clamping and cutting the umbilical cord collapses the three umbilical blood vessels. The proximal umbilical arteries remain a part of the circulatory system, whereas the distal umbilical arteries and the umbilical vein become fibrotic. The newborn keeps warm by breaking down brown adipose tissue in the process of nonshivering thermogenesis. The first consumption of breast milk or formula floods the newborn’s sterile gastrointestinal tract with beneficial bacteria that eventually establish themselves as the bacterial flora, which aid in digestion.

27.6 Lactation

The lactating mother supplies all the hydration and nutrients that a growing infant needs for the first 4–6 months of life. During pregnancy, the body prepares for lactation by stimulating the growth and development of branching lactiferous ducts and alveoli lined with milk-secreting lactocytes and by creating colostrum. These functions are attributable to the actions of several hormones, including prolactin. Following childbirth, suckling triggers oxytocin release, which stimulates myoepithelial cells to squeeze milk from alveoli. Breast milk then drains toward the nipple pores to be consumed by the infant. Colostrum, the milk produced in the first postpartum days, provides immunoglobulins that increase the newborn’s immune defences.

Colostrum, transitional milk, and mature breast milk are ideally suited to each stage of the newborn’s development, and breastfeeding helps the newborn’s digestive system expel meconium and clear bilirubin. Mature milk changes from the beginning to the end of a feeding. Foremilk quenches the infant’s thirst, whereas hindmilk satisfies the infant’s appetite.

Annotate

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