The use of in silico extreme pathway (ExPa) analysis to identify conserved reproductive transcriptional-regulatory networks in humans, mice, and zebrafish
暂无分享,去创建一个
[1] H. Yao,et al. Somatic cell fate maintenance in mouse fetal testes via autocrine/paracrine action of AMH and activin B , 2022, Nature Communications.
[2] R. Lovell-Badge,et al. Long-Range Regulation of Key Sex Determination Genes , 2021, Sexual Development.
[3] S. Greenaway,et al. Origin, specification and differentiation of a rare supporting-like lineage in the developing mouse gonad , 2021, bioRxiv.
[4] M. Wade,et al. Effects of endocrine disrupting chemicals on gonad development: Mechanistic insights from fish and mammals. , 2021, Environmental research.
[5] M. Schartl,et al. A brief review of vertebrate sex evolution with a pledge for integrative research: towards ‘sexomics’ , 2021, Philosophical Transactions of the Royal Society B.
[6] R. Rey. The role of androgen signaling in male sexual development at puberty. , 2020, Endocrinology.
[7] Masaru Nakamura,et al. Sex Determination, Gonadal Sex Differentiation and Pl--asticity in Vertebrate Species. , 2020, Physiological reviews.
[8] A. Pask,et al. Exogenous Oestrogen Impacts Cell Fate Decision in the Developing Gonads: A Potential Cause of Declining Human Reproductive Health , 2020, International journal of molecular sciences.
[9] Mengling Ye,et al. Zebrafish as an emerging model to study gonad development , 2020, Computational and structural biotechnology journal.
[10] S. A. Patten,et al. A Great Catch for Investigating Inborn Errors of Metabolism—Insights Obtained from Zebrafish , 2020, Biomolecules.
[11] C. Smith,et al. Applying Single-Cell Analysis to Gonadogenesis and DSDs (Disorders/Differences of Sex Development) , 2020, International journal of molecular sciences.
[12] B. Jégou,et al. Dynamics of the transcriptional landscape during human fetal testis and ovary development. , 2020, Human reproduction.
[13] S. Hassan,et al. Steroidogenic Factor 1 (Nr5a1) is Required for Sertoli Cell Survival Post Sex Determination , 2019, Scientific Reports.
[14] F. Suárez-Obando,et al. Gene dosage of DAX-1, determining in sexual differentiation: duplication of DAX-1 in two sisters with gonadal dysgenesis , 2019, Molecular Biology Reports.
[15] Zuoyan Zhu,et al. Abundance of Early Embryonic Primordial Germ Cells Promotes Zebrafish Female Differentiation as Revealed by Lifetime Labeling of Germline , 2019, Marine Biotechnology.
[16] Satya Prakash Gubbala,et al. Molecular diagnostics of disorders of sexual development: an Indian survey and systems biology perspective , 2018, Systems biology in reproductive medicine.
[17] J. Postlethwait,et al. Female Sex Development and Reproductive Duct Formation Depend on Wnt4a in Zebrafish , 2018, Genetics.
[18] H. Yao,et al. At the Crossroads of Fate—Somatic Cell Lineage Specification in the Fetal Gonad , 2018, Endocrine reviews.
[19] W. Liu,et al. Zebrafish androgen receptor is required for spermatogenesis and maintenance of ovarian function , 2018, Oncotarget.
[20] Chun Liu,et al. Generation of all-male-like sterile zebrafish by eliminating primordial germ cells at early development , 2018, Scientific Reports.
[21] B. Draper,et al. Fibroblast growth factor signaling is required for early somatic gonad development in zebrafish , 2017, PLoS genetics.
[22] B. Capel. Vertebrate sex determination: evolutionary plasticity of a fundamental switch , 2017, Nature Reviews Genetics.
[23] A. Schweitzer,et al. The transcriptome of human oocytes is related to age and ovarian reserve , 2017, Molecular human reproduction.
[24] C. Whittle,et al. Causes and evolutionary consequences of primordial germ-cell specification mode in metazoans , 2017, Proceedings of the National Academy of Sciences.
[25] Yu Chen,et al. Prostaglandin D2 Regulates SOX9 Nuclear Translocation during Gonadal Sex Determination in Tammar Wallaby, Macropus eugenii , 2017, Sexual Development.
[26] D. Hala,et al. In silico predicted reproductive endocrine transcriptional regulatory networks during zebrafish (Danio rerio) development. , 2017, Journal of theoretical biology.
[27] B. Draper,et al. Dmrt1 is necessary for male sexual development in zebrafish. , 2017, Developmental biology.
[28] L. Ribas,et al. Heat-induced masculinization in domesticated zebrafish is family-specific and yields a set of different gonadal transcriptomes , 2017, Proceedings of the National Academy of Sciences.
[29] John Hutson,et al. Disorders of sex development: insights from targeted gene sequencing of a large international patient cohort , 2016, Genome Biology.
[30] A. Pradhan,et al. Regulation of zebrafish gonadal sex differentiation , 2016 .
[31] Claudine Chaouiya,et al. Primary sex determination of placental mammals: a modelling study uncovers dynamical developmental constraints in the formation of Sertoli and granulosa cells , 2016, BMC Systems Biology.
[32] G. B. Buck Louis,et al. Male Reproductive Disorders and Fertility Trends: Influences of Environment and Genetic Susceptibility. , 2016, Physiological reviews.
[33] Luis Mendoza,et al. A Boolean network model of human gonadal sex determination , 2015, Theoretical Biology and Medical Modelling.
[34] M. Schartl,et al. Plasticity of gene‐regulatory networks controlling sex determination: of masters, slaves, usual suspects, newcomers, and usurpators , 2015, EMBO reports.
[35] B. Capel,et al. Cell fate commitment during mammalian sex determination. , 2015, Current opinion in genetics & development.
[36] Zhan Yin,et al. Sufficient Numbers of Early Germ Cells Are Essential for Female Sex Development in Zebrafish , 2015, PloS one.
[37] Angel Amores,et al. Wild Sex in Zebrafish: Loss of the Natural Sex Determinant in Domesticated Strains , 2014, Genetics.
[38] A. Pradhan,et al. Juvenile Ovary to Testis Transition in Zebrafish Involves Inhibition of Ptges1 , 2014, Biology of reproduction.
[39] Corinna Singleman,et al. Growth and maturation in the zebrafish, Danio rerio: a staging tool for teaching and research. , 2014, Zebrafish.
[40] A. Greenfield,et al. Characterising Novel Pathways in Testis Determination Using Mouse Genetics , 2014, Sexual Development.
[41] A. Sinclair,et al. The Genetics of Disorders of Sex Development in Humans , 2014, Sexual Development.
[42] A. V. Trukhina,et al. The Variety of Vertebrate Mechanisms of Sex Determination , 2013, BioMed research international.
[43] Anton J. Enright,et al. The zebrafish reference genome sequence and its relationship to the human genome , 2013, Nature.
[44] C. Smith,et al. Just how conserved is vertebrate sex determination? , 2013, Developmental dynamics : an official publication of the American Association of Anatomists.
[45] Makoto Ono,et al. Disorders of sex development: new genes, new concepts , 2013, Nature Reviews Endocrinology.
[46] A. Greenfield,et al. The molecular and cellular basis of gonadal sex reversal in mice and humans , 2012, Wiley interdisciplinary reviews. Developmental biology.
[47] A. Sinclair,et al. Mammalian sex determination—insights from humans and mice , 2012, Chromosome Research.
[48] P. Koopman,et al. Sry: the master switch in mammalian sex determination , 2010, Development.
[49] G. Shaw,et al. Oestrogen blocks the nuclear entry of SOX9 in the developing gonad of a marsupial mammal , 2010, BMC Biology.
[50] P. Gómez-Requeni,et al. A reference growth curve for nutritional experiments in zebrafish (Danio rerio) and changes in whole body proteome during development , 2010, Fish Physiology and Biochemistry.
[51] J. Gustafsson,et al. Levels of 17β-Estradiol Receptors Expressed in Embryonic and Adult Zebrafish Following In Vivo Treatment of Natural or Synthetic Ligands , 2010, PloS one.
[52] Dianqing Wu,et al. GSK3: a multifaceted kinase in Wnt signaling. , 2010, Trends in biochemical sciences.
[53] J. Brodin,et al. Hypoxia alters gene expression in the gonads of zebrafish (Danio rerio). , 2009, Aquatic toxicology.
[54] Z. Gong,et al. Comparative transcriptome analyses revealed conserved biological and transcription factor target modules between the zebrafish and human tumors. , 2009, Zebrafish.
[55] P. Olsson,et al. Long and winding roads: Testis differentiation in zebrafish , 2009, Molecular and Cellular Endocrinology.
[56] D. Saito,et al. Comparative Aspects of Gonadal Sex Differentiation in Medaka: A Conserved Role of Developing Oocytes in Sexual Canalization , 2009, Sexual Development.
[57] Bernhard O. Palsson,et al. Functional States of the Genome-Scale Escherichia Coli Transcriptional Regulatory System , 2009, PLoS Comput. Biol..
[58] C. Nüsslein-Volhard,et al. Germ line control of female sex determination in zebrafish. , 2008, Developmental biology.
[59] J. Jameson,et al. A Phenotypic Spectrum of Sexual Development in Dax1 (Nr0b1)-Deficient Mice: Consequence of the C57BL/6J Strain on Sex Determination1 , 2008, Biology of reproduction.
[60] L. Rasmussen,et al. Expression profiles for six zebrafish genes during gonadal sex differentiation , 2008, Reproductive biology and endocrinology : RB&E.
[61] G. Camerino,et al. Activation of beta-catenin signaling by Rspo1 controls differentiation of the mammalian ovary. , 2008, Human molecular genetics.
[62] R. Lovell-Badge,et al. Sex determination involves synergistic action of SRY and SF1 on a specific Sox9 enhancer , 2008, Nature.
[63] Helen E. Parkinson,et al. ArrayExpress—a public database of microarray experiments and gene expression profiles , 2006, Nucleic Acids Res..
[64] K. Loveland,et al. Expression of hedgehog signalling components in adult mouse testis , 2006, Developmental dynamics : an official publication of the American Association of Anatomists.
[65] Bernhard O. Palsson,et al. Matrix Formalism to Describe Functional States of Transcriptional Regulatory Systems , 2006, PLoS Comput. Biol..
[66] Sherilyn J. Sawyer,et al. Real-time PCR analysis of cytochrome P450 aromatase expression in zebrafish: gene specific tissue distribution, sex differences, developmental programming, and estrogen regulation. , 2006, General and comparative endocrinology.
[67] R. Sharpe. Pathways of endocrine disruption during male sexual differentiation and masculinization. , 2006, Best practice & research. Clinical endocrinology & metabolism.
[68] Catherine A. Wilson,et al. Characterization and expression pattern of zebrafish Anti-Müllerian hormone (Amh) relative to sox9a, sox9b, and cyp19a1a, during gonad development. , 2005, Gene expression patterns : GEP.
[69] Bernhard O. Palsson,et al. Expa: a Program for Calculating Extreme Pathways in Biochemical Reaction Networks , 2005, Bioinform..
[70] Catherine A. Wilson,et al. A pair of Sox: distinct and overlapping functions of zebrafish sox9 co-orthologs in craniofacial and pectoral fin development , 2005, Development.
[71] M. Griswold,et al. Profiling Gene Expression During the Differentiation and Development of the Murine Embryonic Gonad1 , 2005, Biology of reproduction.
[72] D. B. Hales,et al. Overview of steroidogenic enzymes in the pathway from cholesterol to active steroid hormones. , 2004, Endocrine reviews.
[73] Edward R B McCabe,et al. DAX1 and its network partners: exploring complexity in development. , 2003, Molecular genetics and metabolism.
[74] T. Iguchi,et al. Oocyte apoptosis during the transition from ovary-like tissue to testes during sex differentiation of juvenile zebrafish. , 2002, The Journal of experimental biology.
[75] T. Vaskivuo,et al. Survival of human ovarian follicles from fetal to adult life: apoptosis, apoptosis-related proteins, and transcription factor GATA-4. , 2001, The Journal of clinical endocrinology and metabolism.
[76] W. Franke,et al. Cadherin-catenin complexes during zebrafish oogenesis: heterotypic junctions between oocytes and follicle cells. , 1999, Biology of reproduction.
[77] R. Heinrich,et al. Metabolic Pathway Analysis: Basic Concepts and Scientific Applications in the Post‐genomic Era , 1999, Biotechnology progress.
[78] R. Viger,et al. Transcription factor GATA-4 is expressed in a sexually dimorphic pattern during mouse gonadal development and is a potent activator of the Müllerian inhibiting substance promoter. , 1998, Development.
[79] B. Palsson,et al. The underlying pathway structure of biochemical reaction networks. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[80] C. Niehrs,et al. Dickkopf-1 is a member of a new family of secreted proteins and functions in head induction , 1998, Nature.
[81] C. Kimmel,et al. Stages of embryonic development of the zebrafish , 1995, Developmental dynamics : an official publication of the American Association of Anatomists.
[82] Robin Lovell-Badge,et al. A gene from the human sex-determining region encodes a protein with homology to a conserved DNA-binding motif , 1990, Nature.
[83] R. Thomas,et al. Boolean formalization of genetic control circuits. , 1973, Journal of theoretical biology.
[84] E. M. Otis,et al. Equivalent ages in mouse and human embryos , 1954, The Anatomical record.