The ovarian follicle of ruminants: the path from conceptus to adult.
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J. Dupont | R. Cushman | J. Juengel | R. Lea | G. Martin | S. Fabre | C. Price | F. Mossa | Peter R. Smith | J. Pitman
[1] J. Dupont,et al. Adipokines change the balance of proliferation/apoptosis in the ovarian cells of human and domestic animals: A comparative review. , 2021, Animal reproduction science.
[2] G. L. Bennett,et al. Production performance of cows raised with different postweaning growth patterns. , 2021, Translational animal science.
[3] J. Ireland,et al. Exposure of dairy cows to high environmental temperatures and their lactation status impairs establishment of the ovarian reserve in their offspring. , 2020, Journal of dairy science.
[4] L. Spicer,et al. Discovery of a possible role of asprosin in ovarian follicular function. , 2020, Journal of molecular endocrinology.
[5] S. Aydin,et al. Subfatin and asprosin, two new metabolic players of polycystic ovary syndrome , 2020, Journal of obstetrics and gynaecology : the journal of the Institute of Obstetrics and Gynaecology.
[6] S. Franks,et al. Insights into Manipulating Postprandial Energy Expenditure to Manage Weight Gain in Polycystic Ovary Syndrome , 2020, iScience.
[7] P. S. Baruselli,et al. Transforming growth factor-β superfamily and interferon-τ in ovarian function and embryo development in female cattle: review of biology and application. , 2020, Reproduction, fertility, and development.
[8] J. Juengel,et al. The follicular microenvironment in low (++) and high (I+B+) ovulation rate ewes. , 2020, Reproduction.
[9] K. Kalscheur,et al. Symposium review: Nutrition strategies for improved health, production, and fertility during the transition period. , 2020, Journal of dairy science.
[10] P. G. Knight,et al. Modulatory effects of TGF-β1 and BMP6 on thecal angiogenesis and steroidogenesis in the bovine ovary. , 2020, Reproduction.
[11] H. Kadokawa,et al. Anti-Müllerian hormone is expressed and secreted by bovine oviductal and endometrial epithelial cells. , 2020, Animal science journal = Nihon chikusan Gakkaiho.
[12] Yachun Wang,et al. Regulation of AMH, AMHR-II, and BMPs (2,6) Genes of Bovine Granulosa Cells Treated with Exogenous FSH and Their Association with Protein Hormones , 2019, Genes.
[13] M. Colazo,et al. Anti-Müllerian hormone in grazing dairy cows: Identification of factors affecting plasma concentration, relationship with phenotypic fertility, and genome-wide associations. , 2019, Journal of dairy science.
[14] M. Qi,et al. Effect of the Booroola fecundity (FecB) gene on the reproductive performance of ewes under assisted reproduction. , 2019, Theriogenology.
[15] P. Froment,et al. Ovarian Expression of Adipokines in Polycystic Ovary Syndrome: A Role for Chemerin, Omentin, and Apelin in Follicular Growth Arrest and Ovulatory Dysfunction? , 2019, International journal of molecular sciences.
[16] D. Monniaux,et al. Prenatal programming by testosterone of follicular theca cell functions in ovary , 2019, Cellular and Molecular Life Sciences.
[17] L. Spicer,et al. Hormonal regulation of vascular endothelial growth factor A (VEGFA) gene expression in granulosa and theca cells of cattle1. , 2019, Journal of animal science.
[18] S. Mahalingaiah,et al. Do prenatal exposures pose a real threat to ovarian function? Bisphenol A as a case study. , 2019, Reproduction.
[19] Taiping Chen,et al. DNA Methylation Reprogramming during Mammalian Development , 2019, Genes.
[20] J. Juengel,et al. Gestational nutrition 1: alterations to gestational nutrition can increase indicators of fertility in sheep. , 2019, Reproduction.
[21] M. D’Occhio,et al. Influence of nutrition, body condition, and metabolic status on reproduction in female beef cattle: A review. , 2019, Theriogenology.
[22] J. Ireland,et al. Physiology and endocrinology symposium: Anti-Müllerian hormone: a biomarker for the ovarian reserve, ovarian function, and fertility in dairy cows. , 2019, Journal of animal science.
[23] J. Miles,et al. Maternal age influences the number of primordial follicles in the ovaries of yearling Angus heifers. , 2019, Animal reproduction science.
[24] C. Glister,et al. Gremlin, Noggin, Chordin and follistatin differentially modulate BMP induced suppression of androgen secretion by bovine ovarian theca cells. , 2019, Journal of molecular endocrinology.
[25] C. Price,et al. Effects of fibroblast growth factors and the transcription factor, early growth response 1, on bovine theca cells , 2018, Molecular and Cellular Endocrinology.
[26] C. Viñoles,et al. Antral follicular count is a tool that may allow the selection of more precocious Bradford heifers at weaning. , 2018, Theriogenology.
[27] J. Steibel,et al. Genomic heritability and genome-wide association analysis of anti-Müllerian hormone in Holstein dairy heifers. , 2018, Journal of dairy science.
[28] Yongju Zhao,et al. BMP15 regulates AMH expression via the p38 MAPK pathway in granulosa cells from goat. , 2018, Theriogenology.
[29] J. Juengel,et al. The local regulation of folliculogenesis by members of the transforming growth factor superfamily and its relevance for advanced breeding programmes , 2018, Animal reproduction.
[30] R. Sartori,et al. Mechanisms regulating follicle selection in ruminants: lessons learned from multiple ovulation models , 2018, Animal reproduction.
[31] M. Colazo,et al. The relationship between serum anti-Müllerian hormone concentrations and fertility, and genome-wide associations for anti-Müllerian hormone in Holstein cows. , 2018, Journal of dairy science.
[32] J. Souza-Fabjan,et al. Anti-Müllerian hormone and antral follicle count are more effective for selecting ewes with good potential for in vivo embryo production than the presence of FecGE mutation or eCG pre-selection tests. , 2018, Theriogenology.
[33] C. Combelles,et al. Spindle abnormalities and chromosome misalignment in bovine oocytes after exposure to low doses of bisphenol A or bisphenol S , 2018, Human reproduction.
[34] M. Wiltbank,et al. Trio a novel bovine high-fecundity allele: II. Hormonal profile and follicular dynamics underlying the high ovulation rate† , 2018, Biology of Reproduction.
[35] R. Sartori,et al. Trio, a novel bovine high fecundity allele: III. Acquisition of dominance and ovulatory capacity at a smaller follicle size† , 2018, Biology of Reproduction.
[36] J. Juengel. How the quest to improve sheep reproduction provided insight into oocyte control of follicular development , 2018 .
[37] R. Ivell,et al. Theca Cell INSL3 and Steroids Together Orchestrate the Growing Bovine Antral Follicle , 2017, Front. Physiol..
[38] C. Price,et al. The mycotoxin metabolite deepoxy-deoxynivalenol increases apoptosis and decreases steroidogenesis in bovine ovarian theca cells† , 2017, Biology of Reproduction.
[39] H. Kadarmideen,et al. Genomic study and Medical Subject Headings enrichment analysis of early pregnancy rate and antral follicle numbers in Nelore heifers. , 2017, Journal of animal science.
[40] J. Troisi,et al. Bisphenol A in Reproduction: Epigenetic Effects. , 2017, Current medicinal chemistry.
[41] Jing Pang,et al. Genome-wide analysis of DNA Methylation profiles on sheep ovaries associated with prolificacy using whole-genome Bisulfite sequencing , 2017, BMC Genomics.
[42] J. Dupont,et al. Involvement of plasma adipokines in metabolic and reproductive parameters in Holstein dairy cows fed with diets with differing energy levels. , 2017, Journal of dairy science.
[43] M. Wiltbank,et al. Ovulation rate, antral follicle count, and circulating anti-Müllerian hormone in Trio allele carriers, a novel high fecundity bovine genotype. , 2017, Theriogenology.
[44] J. Moraes,et al. Ewes carrying the Booroola and Vacaria prolificacy alleles respond differently to ovulation induction with equine chorionic gonadotrophin. , 2017, Genetics and molecular research : GMR.
[45] R. Krisher,et al. A pre-in vitro maturation medium containing cumulus oocyte complex ligand-receptor signaling molecules maintains meiotic arrest, supports the cumulus oocyte complex and improves oocyte developmental competence , 2017, Molecular human reproduction.
[46] Toru Takahashi,et al. Plasma anti-Müllerian hormone profile in heifers from birth through puberty and relationship with puberty onset† , 2017, Biology of Reproduction.
[47] P. G. Knight,et al. Follicular expression of pro-inflammatory cytokines tumour necrosis factor-α (TNFα), interleukin 6 (IL6) and their receptors in cattle: TNFα, IL6 and macrophages suppress thecal androgen production in vitro. , 2017, Reproduction.
[48] Pooja Singh,et al. Agricultural utilization of biosolids: A review on potential effects on soil and plant grown. , 2017, Waste management.
[49] J. E. Fortune,et al. Anti-Müllerian hormone inhibits activation and growth of bovine ovarian follicles in vitro and is localized to growing follicles , 2017, Molecular human reproduction.
[50] P. Froment,et al. Apelin (APLN) regulates progesterone secretion and oocyte maturation in bovine ovarian cells. , 2017, Reproduction.
[51] E. L. Larimore,et al. Beef heifers with diminished numbers of antral follicles have decreased uterine protein concentrations. , 2017, Animal reproduction science.
[52] J. Ireland,et al. Anti-Müllerian Hormone (AMH) and fertility management in agricultural species. , 2017, Reproduction.
[53] Xiaomei Fan,et al. Effect of C-type natriuretic peptide pretreatment on in vitro bovine oocyte maturation , 2016, In Vitro Cellular & Developmental Biology - Animal.
[54] R. Gilchrist,et al. Oocyte maturation and quality: role of cyclic nucleotides. , 2016, Reproduction.
[55] P. Leung,et al. Oocyte–somatic cell interactions in the human ovary—novel role of bone morphogenetic proteins and growth differentiation factors , 2016, Human reproduction update.
[56] R. Alberio,et al. Epigenetics and developmental programming of welfare and production traits in farm animals. , 2016, Reproduction, fertility, and development.
[57] Ryan D Leib,et al. Chemerin activation in human obesity , 2016, Obesity.
[58] F. Schenkel,et al. Genetic analysis of superovulatory response of Holstein cows in Canada. , 2016, Journal of dairy science.
[59] Takashi Shimizu. Molecular and cellular mechanisms for the regulation of ovarian follicular function in cows , 2016, The Journal of reproduction and development.
[60] R. Fanchin,et al. The Bone Morphogenetic Protein 15 Up-Regulates the Anti-Müllerian Hormone Receptor Expression in Granulosa Cells. , 2016, The Journal of clinical endocrinology and metabolism.
[61] L. Jouneau,et al. The fetal ovary exhibits temporal sensitivity to a ‘real-life’ mixture of environmental chemicals , 2016, Scientific Reports.
[62] P. Froment,et al. VISFATIN (NAMPT) Improves In Vitro IGF1-Induced Steroidogenesis and IGF1 Receptor Signaling Through SIRT1 in Bovine Granulosa Cells1 , 2016, Biology of reproduction.
[63] J. Juengel,et al. Association between antral follicle count and reproductive measures in New Zealand lactating dairy cows maintained in a pasture-based production system. , 2016, Theriogenology.
[64] C. Price. Mechanisms of fibroblast growth factor signaling in the ovarian follicle. , 2016, The Journal of endocrinology.
[65] E. L. Larimore,et al. Postweaning nutritional programming of ovarian development in beef heifers. , 2015, Journal of animal science.
[66] R. Cushman,et al. Influence of puberty and antral follicle count on calving day in crossbred beef heifers. , 2015, Theriogenology.
[67] U. Eichenlaub-Ritter,et al. Bisphenol A Effects on Mammalian Oogenesis and Epigenetic Integrity of Oocytes: A Case Study Exploring Risks of Endocrine Disrupting Chemicals , 2015, BioMed research international.
[68] P. Gonçalves,et al. Evidence that fibroblast growth factor 10 plays a role in follicle selection in cattle. , 2015, Reproduction, fertility, and development.
[69] R. Gilchrist,et al. Promotion of EGF receptor signaling improves the quality of low developmental competence oocytes. , 2015, Developmental biology.
[70] Amin Tamadon,et al. The relationship between serum adiponectin and postpartum luteal activity in high-producing dairy cows. , 2015, Theriogenology.
[71] E. Batista,et al. Relationship between follicle population, AMH concentration and fertility in cattle , 2015 .
[72] R. Cushman,et al. The consequence of level of nutrition on heifer ovarian and mammary development. , 2014, Journal of animal science.
[73] A. González-Bulnes,et al. Predictive value of antral follicle count and anti-Müllerian hormone for follicle and oocyte developmental competence during the early prepubertal period in a sheep model. , 2014, Reproduction, fertility, and development.
[74] I. Tessaro,et al. Natriuretic Peptide Precursor C Delays Meiotic Resumption and Sustains Gap Junction-Mediated Communication in Bovine Cumulus-Enclosed Oocytes1 , 2014, Biology of reproduction.
[75] M. Uzumcu,et al. Long‐Term Effects of Early‐Life Exposure to Environmental Oestrogens on Ovarian Function: Role of Epigenetics , 2014, Journal of neuroendocrinology.
[76] P. Martin,et al. Effects of the FecL major gene in the Lacaune meat sheep population , 2014, Genetics Selection Evolution.
[77] M. Skinner,et al. Pesticide Methoxychlor Promotes the Epigenetic Transgenerational Inheritance of Adult-Onset Disease through the Female Germline , 2014, PloS one.
[78] R. Tempelman,et al. Heritability and impact of environmental effects during pregnancy on antral follicle count in cattle. , 2014, Journal of dairy science.
[79] J. Dupont,et al. The effect of nutrition and metabolic status on the development of follicles, oocytes and embryos in ruminants. , 2014, Animal : an international journal of animal bioscience.
[80] K. Hummitzsch,et al. Transcriptome Profiling of the Theca Interna from Bovine Ovarian Follicles during Atresia , 2014, PloS one.
[81] D. Wilhelm,et al. Development of mammalian ovary. , 2014, The Journal of endocrinology.
[82] R. Cushman,et al. The impact of cow nutrient status during the second and third trimesters on age at puberty, antral follicle count, and fertility of daughters , 2014 .
[83] P. Monget,et al. The Ovarian Reserve of Primordial Follicles and the Dynamic Reserve of Antral Growing Follicles: What Is the Link?1 , 2014, Biology of reproduction.
[84] J. Dupont,et al. Resistin in Dairy Cows: Plasma Concentrations during Early Lactation, Expression and Potential Role in Adipose Tissue , 2014, PloS one.
[85] Tom Misselbrook,et al. Agriculture: Steps to sustainable livestock , 2014, Nature.
[86] D. Monniaux,et al. Anti-Müllerian hormone concentration in sheep and its dependence of age and independence of BMP15 genotype: an endocrine predictor to select the best donors for embryo biotechnologies. , 2014, Theriogenology.
[87] L. Spicer,et al. Possible role of IGF2 receptors in regulating selection of 2 dominant follicles in cattle selected for twin ovulations and births. , 2013, Domestic animal endocrinology.
[88] J. Juengel,et al. Using sheep lines with mutations in single genes to better understand ovarian function. , 2013, Reproduction.
[89] D. Hamilton,et al. Short- and long-term temporal changes in soil concentrations of selected endocrine disrupting compounds (EDCs) following single or multiple applications of sewage sludge to pastures. , 2013, Environmental pollution.
[90] M. J. Cocero,et al. Influence of the FecX(R) allele in heterozygous ewes on follicular population and outcomes of IVP and ET using LOPU-derived oocytes. , 2013, Reproduction in domestic animals = Zuchthygiene.
[91] D. Monniaux,et al. The Highly Prolific Phenotype of Lacaune Sheep Is Associated with an Ectopic Expression of the B4GALNT2 Gene within the Ovary , 2013, PLoS genetics.
[92] M. Matzuk,et al. Bidirectional communication between oocytes and ovarian follicular somatic cells is required for meiotic arrest of mammalian oocytes , 2013, Proceedings of the National Academy of Sciences.
[93] R. Sharpe,et al. Exposure to chemical cocktails before or after conception – The effect of timing on ovarian development , 2013, Molecular and Cellular Endocrinology.
[94] J. Juengel,et al. Divergence of intracellular signaling pathways and early response genes of two closely related fibroblast growth factors, FGF8 and FGF18, in bovine ovarian granulosa cells , 2013, Molecular and Cellular Endocrinology.
[95] V. Padmanabhan,et al. Sheep models of polycystic ovary syndrome phenotype , 2013, Molecular and Cellular Endocrinology.
[96] P. Lonergan,et al. Maternal Undernutrition in Cows Impairs Ovarian and Cardiovascular Systems in Their Offspring1 , 2013, Biology of reproduction.
[97] J. Wade,et al. A functional link between bone morphogenetic proteins and insulin-like peptide 3 signaling in modulating ovarian androgen production A functional link between bone morphogenetic proteins insulin-like peptide signaling modulating , 2018 .
[98] V. Padmanabhan,et al. Developmental programming: gestational bisphenol-A treatment alters trajectory of fetal ovarian gene expression. , 2013, Endocrinology.
[99] K. Tanemura,et al. C-type natriuretic peptide inhibits porcine oocyte meiotic resumption , 2013, Zygote.
[100] C. Price,et al. Differential actions of fibroblast growth factors on intracellular pathways and target gene expression in bovine ovarian granulosa cells. , 2012, Reproduction.
[101] D. Revell,et al. Consumption of a high-salt diet by ewes during pregnancy alters nephrogenesis in 5-month-old offspring. , 2012, Animal : an international journal of animal bioscience.
[102] R. Webb,et al. Nutritional influences on folliculogenesis. , 2012, Reproduction in domestic animals = Zuchthygiene.
[103] Zuo-min Zhou,et al. Autophagy and Apoptosis Act as Partners to Induce Germ Cell Death after Heat Stress in Mice , 2012, PloS one.
[104] G. Smith,et al. Effects of maternal environment during gestation on ovarian folliculogenesis and consequences for fertility in bovine offspring. , 2012, Reproduction in domestic animals = Zuchthygiene.
[105] P. Mermillod,et al. Anti-Müllerian hormone plasma concentration in prepubertal ewe lambs as a predictor of their fertility at a young age , 2012, BMC Veterinary Research.
[106] B. Campbell,et al. The role of anti-Müllerian hormone (AMH) during follicle development in a monovulatory species (sheep). , 2012, Endocrinology.
[107] G. Smith,et al. Low numbers of ovarian follicles ≥3 mm in diameter are associated with low fertility in dairy cows. , 2012, Journal of dairy science.
[108] G. L. Bennett,et al. Physiology and Endocrinology Symposium: How single nucleotide polymorphism chips will advance our knowledge of factors controlling puberty and aid in selecting replacement beef females. , 2012, Journal of animal science.
[109] Honglin Liu,et al. Current advances in epigenetic modification and alteration during mammalian ovarian folliculogenesis. , 2012, Journal of genetics and genomics = Yi chuan xue bao.
[110] J. Ireland,et al. Granulosa cells are refractory to FSH action in individuals with a low antral follicle count. , 2012, Reproduction, fertility, and development.
[111] D. Monniaux,et al. Anti-Mullerian hormone as a predictive endocrine marker for embryo production in the goat. , 2011, Reproduction.
[112] E. H. Luque,et al. Neonatal exposure to bisphenol A or diethylstilbestrol alters the ovarian follicular dynamics in the lamb. , 2011, Reproductive toxicology.
[113] J. Calvo,et al. Effect of the FecX(R) polymorphism in the bone morphogenetic protein 15 gene on natural or equine chorionic gonadotropin-induced ovulation rate and litter size in Rasa Aragonesa ewes and implications for on-farm application. , 2011, Journal of animal science.
[114] P. G. Knight,et al. Granulosal and thecal expression of bone morphogenetic protein- and activin-binding protein mRNA transcripts during bovine follicle development and factors modulating their expression in vitro. , 2011, Reproduction.
[115] K. Sugiura,et al. Estradiol promotes and maintains cumulus cell expression of natriuretic peptide receptor 2 (NPR2) and meiotic arrest in mouse oocytes in vitro. , 2011, Endocrinology.
[116] A. Bonnet,et al. Transcriptome profiling of sheep granulosa cells and oocytes during early follicular development obtained by Laser Capture Microdissection , 2011, BMC Genomics.
[117] Emily C Turner,et al. Conditional ablation of macrophages disrupts ovarian vasculature , 2011, Reproduction.
[118] B K Campbell,et al. Regulation of folliculogenesis and the determination of ovulation rate in ruminants. , 2011, Reproduction, fertility, and development.
[119] N. Forde,et al. Oestrous cycles in Bos taurus cattle. , 2011, Animal reproduction science.
[120] J. Giffin,et al. Reproductive cycles in sheep. , 2011, Animal reproduction science.
[121] P. Froment,et al. Expression and effect of resistin on bovine and rat granulosa cell steroidogenesis and proliferation. , 2011, Reproduction.
[122] L. Spicer,et al. Effect of resistin on granulosa and theca cell function in cattle. , 2011, Animal reproduction science.
[123] C. Médigue,et al. Regulation of Anti-Müllerian Hormone Production in the Cow: A Multiscale Study at Endocrine, Ovarian, Follicular, and Granulosa Cell Levels1 , 2011, Biology of reproduction.
[124] A. Mcneilly,et al. Theca: the forgotten cell of the ovarian follicle. , 2010, Reproduction.
[125] J. Juengel,et al. The conflict between hierarchical ovarian follicular development and superovulation treatment. , 2010, Reproduction.
[126] R. Sharpe,et al. Maternal and fetal tissue accumulation of selected endocrine disrupting compounds (EDCs) following exposure to sewage sludge-treated pastures before or after conception , 2010, Journal of environmental monitoring : JEM.
[127] J. Fontaine,et al. Endocrine Characterization of the Reproductive Axis in Highly Prolific Lacaune Sheep Homozygous for the FecLL Mutation1 , 2010, Biology of reproduction.
[128] M. Tabandeh,et al. Changes in the gene expression of adiponectin and adiponectin receptors (AdipoR1 and AdipoR2) in ovarian follicular cells of dairy cow at different stages of development. , 2010, Theriogenology.
[129] J. Dupont,et al. Effect of adiponectin on bovine granulosa cell steroidogenesis, oocyte maturation and embryo development , 2010, Reproductive biology and endocrinology : RB&E.
[130] R. Borg,et al. Phenotypic and genetic associations between lamb growth traits and adult ewe body weights in western range sheep. , 2009, Journal of animal science.
[131] F. Menniti,et al. Cyclic GMP Signaling Is Involved in the Luteinizing Hormone-Dependent Meiotic Maturation of Mouse Oocytes1 , 2009, Biology of reproduction.
[132] M. Maliqueo,et al. Testosterone-induced downregulation of anti-Müllerian hormone expression in granulosa cells from small bovine follicles , 2009, Endocrine.
[133] S. Rhind,et al. Accumulation of endocrine disrupting compounds in sheep fetal and maternal liver tissue following exposure to pastures treated with sewage sludge. , 2009, Journal of environmental monitoring : JEM.
[134] Almudena Veiga-Lopez,et al. Developmental Programming: Differential Effects of Prenatal Testosterone and Dihydrotestosterone on Follicular Recruitment, Depletion of Follicular Reserve, and Ovarian Morphology in Sheep1 , 2009, Biology of reproduction.
[135] T. Árnason,et al. Multiple trait genetic evaluation of ewe traits in Icelandic sheep. , 2008, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[136] G. Smith,et al. Antral Follicle Count Reliably Predicts Number of Morphologically Healthy Oocytes and Follicles in Ovaries of Young Adult Cattle1 , 2008, Biology of reproduction.
[137] D. Paul,et al. Luteinizing hormone causes MAP kinase-dependent phosphorylation and closure of connexin 43 gap junctions in mouse ovarian follicles: one of two paths to meiotic resumption , 2008, Development.
[138] M. Diskin,et al. Embryonic and early foetal losses in cattle and other ruminants. , 2008, Reproduction in domestic animals = Zuchthygiene.
[139] P. Cash,et al. In utero exposure to low doses of environmental pollutants disrupts fetal ovarian development in sheep , 2008, Molecular human reproduction.
[140] L. Spicer,et al. Role of adiponectin in regulating ovarian theca and granulosa cell function , 2008, Molecular and Cellular Endocrinology.
[141] R. Gilchrist,et al. Oocyte-secreted factors: regulators of cumulus cell function and oocyte quality. , 2008, Human reproduction update.
[142] J. Affourtit,et al. Oocyte regulation of metabolic cooperativity between mouse cumulus cells and oocytes: BMP15 and GDF9 control cholesterol biosynthesis in cumulus cells , 2007, Development.
[143] R. Webb,et al. Invited review: New perspectives on the roles of nutrition and metabolic priorities in the subfertility of high-producing dairy cows. , 2007, Journal of dairy science.
[144] P. Hunt,et al. Bisphenol A Exposure In Utero Disrupts Early Oogenesis in the Mouse , 2007, PLoS genetics.
[145] K. Kannan,et al. Developmental programming: differential effects of prenatal exposure to bisphenol-A or methoxychlor on reproductive function. , 2006, Endocrinology.
[146] R. Gilchrist,et al. Oocyte-secreted factors enhance oocyte developmental competence. , 2006, Developmental biology.
[147] P. Monget,et al. Regulation of ovulation rate in mammals: contribution of sheep genetic models , 2006, Reproductive biology and endocrinology : RB&E.
[148] M. Conti,et al. New Pathways from PKA to the Cdc2/cyclin B Complex in Oocytes: Wee1B as a Potential PKA Substrate , 2006, Cell cycle.
[149] N. Nevo,et al. Disruption of gap junctional communication within the ovarian follicle induces oocyte maturation. , 2005, Endocrinology.
[150] Michael K. Skinner,et al. Epigenetic Transgenerational Actions of Endocrine Disruptors and Male Fertility , 2005, Science.
[151] P. G. Knight,et al. Bone morphogenetic proteins (BMP) -4, -6, and -7 potently suppress basal and luteinizing hormone-induced androgen production by bovine theca interna cells in primary culture: could ovarian hyperandrogenic dysfunction be caused by a defect in thecal BMP signaling? , 2005, Endocrinology.
[152] S. Rhind,et al. Alkyl Phenols and Diethylhexyl Phthalate in Tissues of Sheep Grazing Pastures Fertilized with Sewage Sludge or Inorganic Fertilizer , 2005, Environmental health perspectives.
[153] C. Kemp,et al. Bone morphogenetic protein (BMP) ligands and receptors in bovine ovarian follicle cells: actions of BMP-4, -6 and -7 on granulosa cells and differential modulation of Smad-1 phosphorylation by follistatin. , 2004, Reproduction.
[154] D. Lunstra,et al. Ovarian follicular development in cattle selected for twin ovulations and births. , 2004, Journal of animal science.
[155] A. Evans,et al. Antral follicle growth and endocrine changes in prepubertal cattle, sheep and goats. , 2003, Animal reproduction science.
[156] P. Delannoy,et al. Molecular cloning, gene organization and expression of the human UDP-GalNAc:Neu5Acalpha2-3Galbeta-R beta1,4-N-acetylgalactosaminyltransferase responsible for the biosynthesis of the blood group Sda/Cad antigen: evidence for an unusual extended cytoplasmic domain. , 2003, The Biochemical journal.
[157] T. Taketo,et al. Continuous loss of oocytes throughout meiotic prophase in the normal mouse ovary. , 2003, Developmental biology.
[158] S. Ford,et al. Ovarian responses to undernutrition in pregnant ewes, USA , 2003, Reproductive biology and endocrinology : RB&E.
[159] F. White,et al. Nutritional- and suckling-mediated anovulation in beef cows , 2003 .
[160] J. Juengel,et al. Formation of Ovarian Follicles During Fetal Development in Sheep1 , 2002, Biology of reproduction.
[161] S. Rhind,et al. Phthalate and alkyl phenol concentrations in soil following applications of inorganic fertiliser or sewage sludge to pasture and potential rates of ingestion by grazing ruminants. , 2002, Journal of environmental monitoring : JEM.
[162] S. Modina,et al. Cellular and molecular mechanisms mediating the effects of polychlorinated biphenyls on oocyte developmental competence in cattle , 2001, Molecular reproduction and development.
[163] D. Miller,et al. Effect of maternal undernutrition during pregnancy on early ovarian development and subsequent follicular development in sheep fetuses. , 2001, Reproduction.
[164] C. Viebahn,et al. Mitotic arrest of female germ cells during prenatal oogenesis. A colcemid-like, non-apoptotic cell death , 2001, Anatomy and Embryology.
[165] J. Kinder,et al. Atresia revisited: two basic patterns of atresia of bovine antral follicles. , 2001, Reproduction.
[166] W. R. Butler,et al. Nutritional interactions with reproductive performance in dairy cattle. , 2000, Animal reproduction science.
[167] Marcelo L F Oliveira,et al. Bovine cumulus/oocyte complex: Quantification of LH/hCG receptors , 2000, Molecular reproduction and development.
[168] K. Wigglesworth,et al. Murine oocytes suppress expression of luteinizing hormone receptor messenger ribonucleic acid by granulosa cells. , 1997, Biology of reproduction.
[169] L. D. Van Vleck,et al. Ovulation rate and twinning rate in cattle: heritabilities and genetic correlation. , 1991, Journal of animal science.
[170] J. Hammond,et al. Concentrations of insulin-like growth factor-I in blood and ovarian follicular fluid of cattle selected for twins. , 1990, Biology of reproduction.
[171] J. Picard,et al. Production of anti-Müllerian hormone: another homology between Sertoli and granulosa cells. , 1984, Endocrinology.
[172] G. Martin,et al. Effects of oestradiol, progesterone and androstenedione on the pulsatile secretion of luteinizing hormone in ovariectomized ewes during spring and autumn. , 1983, The Journal of endocrinology.
[173] G. Müller. Anti-Müllerian hormone , 1978, Nature.
[174] D. Armstrong,et al. Stimulation of aromatization of exogenous and endogenous androgens in ovaries of hypophysectomized rats in vivo by follicle-stimulating hormone. , 1976, Endocrinology.
[175] D. Armstrong. On the Site of Action of Luteinizing Hormone , 1967, Nature.
[176] B. H. Erickson. Development and senescence of the postnatal bovine ovary. , 1966, Journal of animal science.
[177] D. Armstrong,et al. Alteration of the Bovine Estrous Cycle with Oxytocin , 1959 .
[178] Jiana Huang,et al. The Influence of Environmental Factors on Ovarian Function, Follicular Genesis, and Oocyte Quality. , 2021, Advances in experimental medicine and biology.
[179] Antoine Bordes,et al. Search for a pleiotropic effect of the FecLL prolific mutation in Lacaune meat sheep (abstract) , 2018 .
[180] Jo-Ann L. Stanton,et al. Gene expression in sheep fetal ovaries exposed to gestational under nutrition. , 2018, Reproduction.
[181] D. Armstrong. Recipient of the 2018 IETS Pioneer Award: David Thomas Armstrong, BSA, MSc, PhD. , 2017, Reproduction, fertility, and development.
[182] N. MacLusky,et al. BPA exposure during in vitro oocyte maturation results in dose-dependent alterations to embryo development rates, apoptosis rate, sex ratio and gene expression. , 2016, Reproductive toxicology.
[183] D. Monniaux,et al. Anti-Müllerian hormone regulation by the bone morphogenetic proteins in the sheep ovary: deciphering a direct regulatory pathway. , 2015, Endocrinology.
[184] J. Larson,et al. Determination of anti-Müllerian hormone at estrus during a synchronized and a natural bovine estrous cycle. , 2014, Domestic animal endocrinology.
[185] J. Dupont,et al. Regulation of anti-Müllerian hormone production in domestic animals. , 2012, Reproduction, fertility, and development.
[186] R. Mapletoft. Recipient of the 2010 IETS Pioneer Award , 2010 .
[187] R. Cushman,et al. Confirmation of quantitative trait loci using a low-density single nucleotide polymorphism map for twinning and ovulation rate on bovine chromosome 5. , 2009, Journal of animal science.
[188] P. Vercoe,et al. Landcorp farming limited lecture. 'Clean, green and ethical' animal reproduction: extension to sheep and dairy systems in New Zealand. , 2009 .
[189] T. Woodruff,et al. N-linked oligosaccharides direct the differential assembly and secretion of inhibin alpha- and betaA-subunit dimers. , 2007, Molecular endocrinology.
[190] R. Webb,et al. Development of the dominant follicle: mechanisms of selection and maintenance of oocyte quality. , 2007, Society of Reproduction and Fertility supplement.
[191] D. Miller,et al. Effects of maternal undernutrition during early pregnancy on apoptosis regulators in the ovine fetal ovary. , 2006, Reproduction.
[192] M. Sakata,et al. [Luteinizing hormone]. , 2005, Nihon rinsho. Japanese journal of clinical medicine.
[193] M. Skinner,et al. Developmental and hormonal regulation of keratinocyte growth factor expression and action in the ovarian follicle. , 1998, Endocrinology.
[194] P. Racey,et al. Effect of undernutrition of ewes from the time of mating on fetal ovarian development in mid gestation. , 1997, Reproduction, fertility, and development.
[195] B. Bindon,et al. Inhibin immunization for increasing ovulation rate and superovulation , 1994 .
[196] J. Eppig,et al. Regulation of mammalian oocyte maturation. , 1993 .
[197] J. Downing,et al. A model for follicle selection and the determination of ovulation rate in the ewe. , 1993, Reproduction, fertility, and development.
[198] D. Armstrong,et al. Blockade of spontaneous and LH-induced ovulation in rats by indomethacin, an inhibitor of prostaglandin biosynthesis. I. , 1972, Prostaglandins.
[199] L. Murray. Refinement of a physiologically relevant IVM/IVF system on oocyte developmental competency in New Zealand dairy cows , 2022 .