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Meiotic spindle formation in mammalian oocytes: implications for human infertility
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Sperm–egg interaction and fertilization: past, present, and future
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Sperm acrosome reaction: its site and role in fertilization
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The development of the human uterus: morphogenesis to menarche
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Acquisition of oocyte competence to develop as an embryo: integrated nuclear and cytoplasmic events
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The role of centrosomes in mammalian fertilization and its significance for ICSI.
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Early human embryonic development: Blastocyst formation to gastrulation
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Regulation of intracellular pH during oocyte growth and maturation in mammals.
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Connections between preimplantation embryo physiology and culture.
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Intracellular pH regulation in human preimplantation embryos.
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Cell volume regulation in mammalian oocytes and preimplantation embryos.
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TextBook
Chromatin structure in totipotent mouse early preimplantation embryos. J Reprod Dev.
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The first two blastomeres contribute unequally to the human embryo.
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Collective effects of cell cleavage dynamics
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Mechanics of Development
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Seeking arrangements: cell contact as a cleavage-stage biomarker
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Paternal genome elimination: patterns and mechanisms of drive and silencing
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Cell Adhesion Molecules and In Vitro Fertilization
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Zygotic Genome Activation in Vertebrates.
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Metabolic plasticity drives development during mammalian embryogenesis.
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Recent Publications
Mechanisms of minor pole-mediated spindle bipolarization in human oocytes
DOI:10.1126/science.ado1022 by Science in 2024
[1757]
TEAD4 role in trophectoderm commitment and development is not conserved in non-rodent mammals
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Mitochondria as determinants of reproductive senescence and competence: implications for diagnosis of embryo competence in assisted reproduction
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A simple method for repeated in vivo sperm collection from laboratory mice
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[1428]
Human gastrulation: The embryo and its models.
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Sperm, eggs, pollen, and gelato, oh my!
DOI:10.1002/mrd.23722 by Molecular Reproduction and Development in 2024
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The first lineage determination in mammals
DOI:10.1016/j.ydbio.2024.05.011 by Developmental Biology in 2024
[1026]
The first two blastomeres contribute unequally to the human embryo.
DOI:10.1016/j.cell.2024.04.029 by Cell in 2024
[990]
Sub topics related to :Basic embryology
ID
Course
Apicobasal RNA asymmetries control blastomere fate
Basic Clinical Q & A.
Biomechanics of Early Life in the Female Tract
Blastocyst morphology and perinatal Birthweight.
Cytoplasmic strings between ICM and mTE
DNA damage in preimplantation embryos and gametes
Dynamics of embryo development
Extracellular Vesicles and the Oviduct Function
Human embryo implantation
Human embryonic genome activation
Lactate and Implantation
Managing Quality in the ART Laboratory- D Morroll- Cooper Surgical Webinar
Mitochondria in oocytes and embryos - Basic Biology
Mysteries and unsolved problems of mammalian fertilization and related topics
pH and Cell volume regulation in oocytes and early embryo - JM Baltz articles
Standard morphology and morphokinetic development
Time-Lapse Embryo Culture
X chromosome Activation during oocyte development.
Zona Pellucida-Free Embryos
References related to SubTopic
Madani S, Machaty Z, Vajta G. An Alternative Way to Improve Mammalian Embryo Development In Vitro: Culture of Zona Pellucida-Free Embryos. Cell Reprogram. 2022 Jun,24(3):111-117. doi: 10.1089/cell.2022.0012 - ID:4522
Stanger JD, Stevenson K, Lakmaker A, Woolcott R. Pregnancy following fertilization of zona-free, coronal cell intact human ova: Case Report. Hum Reprod. 2001 Jan,16(1):164-167. doi: 10.1093/humrep/16.1.164. - ID:4523
Fan W, Huang T, Wu T, Bai H, Kawahara M, Takahashi M. Zona pellucida removal by acid Tyrode's solution affects pre- and post-implantation development and gene expression in mouse embryos. Biol Reprod. 2022 Aug 10:ioac155. doi: 10.1093/biolre/ioac155 - ID:4566