Human Anatomy First Edition Mc Kinley OLoughlin Chapter

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Human Anatomy, First Edition Mc. Kinley & O'Loughlin Chapter 3 : Embryology Medical ppt

Human Anatomy, First Edition Mc. Kinley & O'Loughlin Chapter 3 : Embryology Medical ppt http: //hastaneciyiz. blogspot. com 1

Embryology n The study of the developmental events that occur during the prenatal period

Embryology n The study of the developmental events that occur during the prenatal period 2

Embryology n n Begins with Fertilization: A single fertilized cell divides by mitosis to

Embryology n n Begins with Fertilization: A single fertilized cell divides by mitosis to produce all of the cells in the body. 3

The Prenatal Period n The first 38 weeks of human development n n The

The Prenatal Period n The first 38 weeks of human development n n The pre-embryonic period: n n n between fertilization and birth. first 2 weeks of development zygote becomes a spherical, multicellular structure. The embryonic period: n n third through eighth weeks all major organ systems appear. 4

The Prenatal Period n The Fetal Period: n n n Includes the remaining weeks

The Prenatal Period n The Fetal Period: n n n Includes the remaining weeks of development prior to birth The fetus continues to grow Its organs increase in complexity 5

The Stages of Embryogenesis n Cleavage: n n n Gastrulation: n n n zygote

The Stages of Embryogenesis n Cleavage: n n n Gastrulation: n n n zygote divides by mitosis forms a multicellular structure called a blastocyst cells form three primary germ layers basic cellular structures from which all body tissues develop. Organogenesis: n three primary germ layers arrange themselves in ways that give rise to all the organs within the body. 6

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Gametogenesis n Following birth, an individual undergoes maturation. n n n the body grows

Gametogenesis n Following birth, an individual undergoes maturation. n n n the body grows and develops the sex organs become mature the sex organs then begin to produce gametes 8

Chromosomes n Human somatic cells contain 23 pairs of chromosomes for a total of

Chromosomes n Human somatic cells contain 23 pairs of chromosomes for a total of 46. n n 22 pairs of autosomes one pair of sex chromosomes. Autosomes contain genetic information for most human characteristics. Homologous chromosomes: n pair of similar autosomes 9

Diploid Cells n n A cell is said to be diploid if it contains

Diploid Cells n n A cell is said to be diploid if it contains 23 pairs of chromosomes. 2 N = 46 10

The Sex Chromosomes n n The pair of sex chromosomes determines whether an individual

The Sex Chromosomes n n The pair of sex chromosomes determines whether an individual is female (XX) or male (XY). One member of each pair of chromosomes is inherited from each parent. 11

Gametogenesis n n n Begins with meiosis. Produces secondary oocytes in the female. Produces

Gametogenesis n n n Begins with meiosis. Produces secondary oocytes in the female. Produces sperm in the male. 12

Meiosis n n n A type of cell division Starts with a diploid parent

Meiosis n n n A type of cell division Starts with a diploid parent cell Produces haploid daughter cells (sperm or eggs/ova). 13

Meiosis I n n Meiosis results in the formation of gametes (sex cells). In

Meiosis I n n Meiosis results in the formation of gametes (sex cells). In meiosis I: n n n homologous chromosomes are separated after synapsis crossing over occurs. In meiosis II: n n sister chromatids are separated sequence of phases resembles mitosis. 14

Prophase I n n Homologous, double-stranded chromosomes in the parent cell form pairs (synapsis).

Prophase I n n Homologous, double-stranded chromosomes in the parent cell form pairs (synapsis). Tetrad: n n Pair of homologous chromosomes Crossing over n occurs between the maternal and paternal chromosomes. 15

Metaphase I n n n Homologous pairs of chromosomes line up above and along

Metaphase I n n n Homologous pairs of chromosomes line up above and along the equator of the cell. Forms a double line of chromosomes. Alignment is random with respect to maternal or paternal origin. 16

Anaphase I n Pairs of homologous chromosomes separate and are pulled to the opposite

Anaphase I n Pairs of homologous chromosomes separate and are pulled to the opposite ends of the cell. 17

Telophase I and Cytokinesis n n Nuclear division finishes The nuclear envelopes re-forms The

Telophase I and Cytokinesis n n Nuclear division finishes The nuclear envelopes re-forms The cytoplasm divides Two new haploid cells are produced 18

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Prophase II n n Resembles the prophase stage of mitosis. In each of the

Prophase II n n Resembles the prophase stage of mitosis. In each of the two new cells: n nuclear membrane breaks down chromosomes collect together. Crossing over does not occur in this phase. 20

Metaphase II n n The double-stranded chromosomes form a single line in the middle

Metaphase II n n The double-stranded chromosomes form a single line in the middle of the cell. Spindle fibers extend from the centrioles at the poles to the centromere of each double-stranded chromosome. 21

Anaphase II n n The sister chromatids of each doublestranded chromosome are pulled apart

Anaphase II n n The sister chromatids of each doublestranded chromosome are pulled apart at the centromere. Each chromatid (single strand) is pulled to the opposite pole of the cell. 22

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Telophase II and Cytokinesis n n n The single-stranded chromosomes arrive at opposite ends

Telophase II and Cytokinesis n n n The single-stranded chromosomes arrive at opposite ends of the cell. A cleavage furrow forms Cytoplasm in both cells divides Produces a total of four haploid daughter cells. These daughter cells mature: n n sperm in males oocytes in females. 24

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Oogenesis n n In females, the sex cell produced is called the secondary oocyte.

Oogenesis n n In females, the sex cell produced is called the secondary oocyte. This cell will have 22 autosomes and one X chromosome. 26

Oogenesis n Oogonia: n n n parent cells that produce oocytes reside in the

Oogenesis n Oogonia: n n n parent cells that produce oocytes reside in the ovaries are diploid cells. All the oogonia start the process of meiosis and form primary oocytes prior to birth. They are arrested in Prophase I and remain this way until the female reaches puberty. Each month usually one becomes a secondary oocyte. 27

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Oogenesis n n n When the primary oocyte completes the first meiotic division, two

Oogenesis n n n When the primary oocyte completes the first meiotic division, two cells are produced. Division of the cytoplasm is unequal. The secondary oocyte receives the bulk of the cytoplasm and is the cell that is arrested in Metaphase II. The second cell, which receives only a tiny bit of the cytoplasm, is called a polar body. The polar body is a nonfunctional cell and eventually degenerates. 29

Oogenesis n n n Only the secondary oocyte has the potential to be fertilized.

Oogenesis n n n Only the secondary oocyte has the potential to be fertilized. The secondary oocyte is ovulated The corona radiata and the zona pellucida form protective layers around the secondary oocyte. 30

Oogenesis n n If the secondary oocyte is not fertilized, it degenerates about 24

Oogenesis n n If the secondary oocyte is not fertilized, it degenerates about 24 hours after ovulation, still arrested in metaphase II. If the secondary oocyte is fertilized, it first finishes the process of meiosis. Two new cells are produced, and as before, the division of the cytoplasm is unequal. The cell that receives very little cytoplasm becomes another polar body and eventually degenerates. The cell that receives the majority of the cytoplasm becomes an ovum which can be fertilized. 31

Oogenesis n n Typically, only one secondary oocyte is expelled (ovulated) from one of

Oogenesis n n Typically, only one secondary oocyte is expelled (ovulated) from one of the two ovaries each month. The left and right ovaries alternate ovulation each month. 32

Spermatogenesis n n n The parent or stem cells that produce sperm are called

Spermatogenesis n n n The parent or stem cells that produce sperm are called spermatogonia. Spermatogonia are diploid cells that reside in the testes. Each one first divides by mitosis to make an exact copy of itself called a primary spermatocyte. 33

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Spermatogenesis n n n Primary spermatocytes then undergo meiosis and produce haploid cells called

Spermatogenesis n n n Primary spermatocytes then undergo meiosis and produce haploid cells called spermatids. Spermatids contain 23 chromosomes, but they still must undergo further changes to form a sperm cell. In spermiogenesis, spermatids lose much of their cytoplasm and grow a long tail called a flagellum. 35

Spermatogenesis n n n The newly formed sperm cells are haploid cells that exhibit

Spermatogenesis n n n The newly formed sperm cells are haploid cells that exhibit a distinctive head, a midpiece, and a tail. From a single spermatocyte, four new sperm are formed. All sperm have 22 autosomes and either an X chromosome, or a Y chromosome. 36

Fertilization n n Two sex cells fuse to form a new cell containing genetic

Fertilization n n Two sex cells fuse to form a new cell containing genetic material derived from both parents. Restores the diploid number of chromosomes. Determines the sex of the organism. Initiates cleavage. Occurs in the widest part of the uterine tube (the ampulla). 37

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Fertilization n n Millions of sperm cells are deposited in the female reproductive tract

Fertilization n n Millions of sperm cells are deposited in the female reproductive tract during intercourse. Only a few hundred have a chance at fertilization. Only the first sperm to enter the secondary oocyte is able to fertilize it. The remaining sperm are prevented from penetrating the oocyte. 39

Cleavage n n n Shortly after fertilization, the zygote begins to undergo a series

Cleavage n n n Shortly after fertilization, the zygote begins to undergo a series of divisions. Divisions increase the number of cells in the pre-embryo, but the pre-embryo remains the same size. During each succeeding division, the cells are smaller and smaller. 40

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Cleavage n n Before the 8 -cell stage, cells are not tightly bound together

Cleavage n n Before the 8 -cell stage, cells are not tightly bound together after the third cleavage division, the cells become tightly compacted into a ball called a morula (16 cells). 42

Blastocyst formation n Zona pellucida begin to disintegrate as morula enters the uterus. Blastocyst

Blastocyst formation n Zona pellucida begin to disintegrate as morula enters the uterus. Blastocyst cavity develops. Pre-embryo now a blastocyst: n n Trophoblast Inner cell mass or embryoblast 43

Implantation n n Implantation is the process by which the blastocyst burrows into and

Implantation n n Implantation is the process by which the blastocyst burrows into and embeds within the endometrium. Begun about day 7; done by day 9 n n Trophoblast cells invade Trophoblast subdivides n n Cytotrophoblast Syncytiotrophoblast 44

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Formation of Bilaminar Germinal Disc • By day 8, embroblast begins to differentiate –

Formation of Bilaminar Germinal Disc • By day 8, embroblast begins to differentiate – Hypoblast layer: adjacent to blastocyst cavity – Epiblast layer: adjacent to amniotic cavity • Together called bilaminal germinal disc 47

Formation of Extraembryonic membranes 48

Formation of Extraembryonic membranes 48

Amnion n n Eventually encloses the entire embryo in a fluid-filled sac called the

Amnion n n Eventually encloses the entire embryo in a fluid-filled sac called the amniotic cavity to prevent desiccation. The amniotic membrane is specialized to secrete the amniotic fluid that bathes the embryo. 49

Chorion n n The outermost extraembryonic membrane, is formed from rapidly growing cells. These

Chorion n n The outermost extraembryonic membrane, is formed from rapidly growing cells. These cells blend with the functional layer of the endometrium and eventually form the placenta. 50

The Placenta n n n Functions in exchange of nutrients, waste products, and respiratory

The Placenta n n n Functions in exchange of nutrients, waste products, and respiratory gases between the maternal and fetal bloodstreams. Transmission of maternal antibodies to the developing embryo or fetus. Production of hormones to maintain and build the uterine lining. 51

Embryonic Period n Begins with establishment of the three germ layer n n n

Embryonic Period n Begins with establishment of the three germ layer n n n By process of gastrulation Ends at about week 8 Main organ systems laid in 52

Gastrulation n Occurs during the third week of development immediately after implantation. One of

Gastrulation n Occurs during the third week of development immediately after implantation. One of the most critical periods in the development of the embryo. Cells of the epiblast migrate and form the three primary germ layers: n n Ectoderm Mesoderm endoderm. Trilaminar structure now called an embryo 53

Primitive streak formation n Dorsal surface of the bilaminar germinal disc Depression on surface

Primitive streak formation n Dorsal surface of the bilaminar germinal disc Depression on surface of epiblast Cephalic end: primitive node n Primitive pit 54

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Invagination n n Inward movement of cells Cells from epiblast detach, move from primitive

Invagination n n Inward movement of cells Cells from epiblast detach, move from primitive streak to area between epiblast and hypoblast. Forms mesoderm Other migrating cells replace the hypoblast: form endoderm Remaining cells in epiblast become ectoderm 56

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Folding of the Embryonic Disc n n n Begins late third and fouth weeks

Folding of the Embryonic Disc n n n Begins late third and fouth weeks Some areas grow faster than others. Cephalocaudal folding: n n Helps form head and buttocks Transverse (or lateral) folding n Helps form trunk 58

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Neurulation: n n differentiation of ectoderm Notochord forms in area of primitive streak This

Neurulation: n n differentiation of ectoderm Notochord forms in area of primitive streak This induces neurulation n n Neural plate folds Groove tube 60

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Differentiation of Mesoderm n Five categories: n n Notochord Paraxial mesoderm n n Intermediate

Differentiation of Mesoderm n Five categories: n n Notochord Paraxial mesoderm n n Intermediate mesoderm n n Urinary and reproductive systems Lateral Plate Mesoderm n n Somites: most bone, muscle, cartilage, dermis, CT Cardiovascular, lining of body cavities, CT of limbs Head Mesenchyme n CT and musculature of face 62

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Differentiation of Endoderm n n Linings of digestive, respiratory and urinary tracts. Thyroid, parathyroid,

Differentiation of Endoderm n n Linings of digestive, respiratory and urinary tracts. Thyroid, parathyroid, thymus, most of liver, pancreas and gallbladder. 64

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Organogenesis n n n Once three primary germ layers have formed, and the embryo

Organogenesis n n n Once three primary germ layers have formed, and the embryo has undergone folding, organogenesis begins. The upper and lower limbs attain their adult shapes, and the rudimentary forms of most organ systems have developed by week 8. By the end of the embryonic period, the embryo is slightly longer than 2. 5 centimeters (1 inch), and yet it already has the outward appearance of a human. Medical ppt http: //hastaneciyiz. blogspot. com 68