Unravelling the genomic architecture of bull fertility in Holstein cattle
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[1] K. Weigel,et al. Genome-wide association mapping and pathway analysis of leukosis incidence in a US Holstein cattle population. , 2016, Animal genetics.
[2] Lars Rönnegård,et al. Increasing the power of genome wide association studies in natural populations using repeated measures – evaluation and implementation , 2016, Methods in ecology and evolution.
[3] Erich A. Peterson,et al. Enhancing cancer clonality analysis with integrative genomics , 2015, BMC Bioinformatics.
[4] F. Peñagaricano,et al. An application of MeSH enrichment analysis in livestock , 2015, Animal genetics.
[5] Yet-Ran Chen,et al. SEPT12 orchestrates the formation of mammalian sperm annulus by organizing core octameric complexes with other SEPT proteins , 2015, Journal of Cell Science.
[6] Xuejiang Guo,et al. Quantitative Phosphoproteomics Analysis Reveals a Key Role of Insulin Growth Factor 1 Receptor (IGF1R) Tyrosine Kinase in Human Sperm Capacitation* , 2015, Molecular & Cellular Proteomics.
[7] Satoru Miyazaki,et al. MeSH ORA framework: R/Bioconductor packages to support MeSH over-representation analysis , 2015, BMC Bioinformatics.
[8] A. Legarra,et al. A comparison of methods for whole-genome QTL mapping using dense markers in four livestock species , 2015, Genetics Selection Evolution.
[9] S. Nef,et al. The emerging role of insulin-like growth factors in testis development and function , 2014, Basic and Clinical Andrology.
[10] J. Dean,et al. A single domain of the ZP2 zona pellucida protein mediates gamete recognition in mice and humans , 2014, The Journal of cell biology.
[11] F. Peñagaricano,et al. Invited review: Genetic contributions underlying the development of preimplantation bovine embryos. , 2014, Journal of dairy science.
[12] H. Li,et al. The effect of mahogunin gene mutant on reproduction in male mice: a new sight for infertility? , 2014, Andrologia.
[13] K. Weigel,et al. Genomic architecture of bovine κ-casein and β-lactoglobulin. , 2013, Journal of dairy science.
[14] A. Reverter,et al. Genome‐wide association study for inhibin, luteinizing hormone, insulin‐like growth factor 1, testicular size and semen traits in bovine species , 2013, Andrology.
[15] B. Conne,et al. An essential role for insulin and IGF1 receptors in regulating sertoli cell proliferation, testis size, and FSH action in mice. , 2013, Molecular endocrinology.
[16] K. Weigel,et al. Short communication: A missense mutation in the PROP1 (prophet of Pit 1) gene affects male fertility and milk production traits in the US Holstein population. , 2013, Journal of dairy science.
[17] K. Weigel,et al. Inferring Quantitative Trait Pathways Associated with Bull Fertility from a Genome-Wide Association Study , 2013, Front. Gene..
[18] P. Hung,et al. Alterations to the Bull Sperm Surface Proteins That Bind Sperm to Oviductal Epithelium1 , 2012, Biology of reproduction.
[19] K. Weigel,et al. Comparative genomics between fly, mouse, and cattle identifies genes associated with sire conception rate. , 2012, Journal of dairy science.
[20] A. Reverter,et al. Candidate Genes Associated with Testicular Development, Sperm Quality, and Hormone Levels of Inhibin, Luteinizing Hormone, and Insulin-Like Growth Factor 1 in Brahman Bulls1 , 2012, Biology of reproduction.
[21] K. Weigel,et al. Genome-wide association study identifies candidate markers for bull fertility in Holstein dairy cattle. , 2012, Animal genetics.
[22] W. Muir,et al. Genome-wide association mapping including phenotypes from relatives without genotypes. , 2012, Genetics research.
[23] J. Dejarnette,et al. Impact of genomic selection of AI dairy sires on their likely utilization and methods to estimate fertility: a paradigm shift. , 2012, Theriogenology.
[24] D. Clapham,et al. The control of male fertility by spermatozoan ion channels. , 2012, Annual review of physiology.
[25] Karina S Machado,et al. FReDoWS: a method to automate molecular docking simulations with explicit receptor flexibility and snapshots selection , 2011, BMC Genomics.
[26] T. Nishigaki,et al. Calcium channels in the development, maturation, and function of spermatozoa. , 2011, Physiological reviews.
[27] A. Kaya,et al. A whole-genome association analysis of noncompensatory fertility in Holstein bulls. , 2011, Journal of dairy science.
[28] Matthew D. Dun,et al. The Chaperonin Containing TCP1 Complex (CCT/TRiC) Is Involved in Mediating Sperm-Oocyte Interaction , 2011, The Journal of Biological Chemistry.
[29] Tad S Sonstegard,et al. Genome-wide association analysis of thirty one production, health, reproduction and body conformation traits in contemporary U.S. Holstein cows , 2011, BMC Genomics.
[30] Yan Li,et al. Venom gland transcriptomes of two elapid snakes (Bungarus multicinctus and Naja atra) and evolution of toxin genes , 2011, BMC Genomics.
[31] H. Khatib,et al. Short communication: Validation of in vitro fertility genes in a Holstein bull population. , 2010, Journal of dairy science.
[32] Yibo Wu,et al. GOSemSim: an R package for measuring semantic similarity among GO terms and gene products , 2010, Bioinform..
[33] Matthew D. Young,et al. Gene ontology analysis for RNA-seq: accounting for selection bias , 2010, Genome Biology.
[34] I Misztal,et al. Hot topic: a unified approach to utilize phenotypic, full pedigree, and genomic information for genetic evaluation of Holstein final score. , 2010, Journal of dairy science.
[35] A. Stark,et al. The TDRD9-MIWI2 complex is essential for piRNA-mediated retrotransposon silencing in the mouse male germline. , 2009, Developmental cell.
[36] E. Birney,et al. Mapping identifiers for the integration of genomic datasets with the R/Bioconductor package biomaRt , 2009, Nature Protocols.
[37] P. Yen,et al. The expression level of septin12 is critical for spermiogenesis. , 2009, The American journal of pathology.
[38] David R. Kelley,et al. A whole-genome assembly of the domestic cow, Bos taurus , 2009, Genome Biology.
[39] R. Gibbs,et al. Two-stage genome-wide association study identifies integrin beta 5 as having potential role in bull fertility , 2009, BMC Genomics.
[40] D. Chasman. On the utility of gene set methods in genomewide association studies of quantitative traits , 2008, Genetic epidemiology.
[41] M. Diskin,et al. Effect of progesterone on embryo survival. , 2008, Animal : an international journal of animal bioscience.
[42] H. Norman,et al. Modeling nuisance variables for prediction of service sire fertility. , 2008, Journal of dairy science.
[43] A. Voss,et al. Mof (MYST1 or KAT8) Is Essential for Progression of Embryonic Development Past the Blastocyst Stage and Required for Normal Chromatin Architecture , 2008, Molecular and Cellular Biology.
[44] J. Hutchison,et al. Prediction of dairy bull fertility from field data: use of multiple services and identification and utilization of factors affecting bull fertility. , 2008, Journal of dairy science.
[45] Y. Nagamine,et al. Effect of environmental factors on fertility of Holstein–Friesian cattle in Japan , 2008 .
[46] A. Voss,et al. The genes coding for the MYST family histone acetyltransferases, Tip60 and Mof, are expressed at high levels during sperm development. , 2007, Gene expression patterns : GEP.
[47] Kent A Weigel,et al. Prospects for improving reproductive performance through genetic selection. , 2006, Animal reproduction science.
[48] G. Shook. Major advances in determining appropriate selection goals. , 2006, Journal of dairy science.
[49] Bart De Moor,et al. BioMart and Bioconductor: a powerful link between biological databases and microarray data analysis , 2005, Bioinform..
[50] S. Gamboa,et al. SNARE proteins and caveolin-1 in stallion spermatozoa: possible implications for fertility. , 2005, Theriogenology.
[51] G. Kistemaker,et al. Estimates of genetic parameters for Canadian Holstein female reproduction traits. , 2005, Journal of dairy science.
[52] J. Santos,et al. The effect of embryonic death rates in cattle on the efficacy of estrus synchronization programs. , 2004, Animal reproduction science.
[53] R. Lenz,et al. Sustaining the Fertility of Artificially Inseminated Dairy Cattle: The Role of the Artificial Insemination Industry , 2004 .
[54] J. Shabanowitz,et al. Phosphoproteome Analysis of Capacitated Human Sperm , 2003, The Journal of Biological Chemistry.
[55] G. Schatten,et al. Control of Membrane Fusion During Spermiogenesis and the Acrosome Reaction1 , 2002, Biology of reproduction.
[56] A. Agarwal,et al. Creatine kinase as an indicator of sperm quality and maturity in men with oligospermia. , 2001, Urology.
[57] M. Lucy,et al. Reproductive loss in high-producing dairy cattle: where will it end? , 2001, Journal of dairy science.
[58] John Woolliams,et al. Declining fertility in dairy cattle: changes in traditional and endocrine parameters of fertility. , 2000 .
[59] M. Ashburner,et al. Gene Ontology: tool for the unification of biology , 2000, Nature Genetics.
[60] M. Diskin,et al. Embryo death in cattle: an update. , 2011, Reproduction, fertility, and development.
[61] Momiao Xiong,et al. Gene and pathway-based second-wave analysis of genome-wide association studies , 2010, European Journal of Human Genetics.
[62] 田中 敬. The TDRD9-MIWI2 complex is essential for piRNA-mediated retrotransposon silencing in the mouse male germline , 2010 .
[63] Stuart J. Nelson,et al. The MeSH Translation Maintenance System: Structure, Interface Design, and Implementation , 2004, MedInfo.
[64] L. Kovács,et al. Sperm Creatine Kinase Activity in Normospermic and Oligozospermic Hungarian Men , 2004, Journal of Assisted Reproduction and Genetics.
[65] J. Philipsson,et al. Genetic studies on fertility in AI bulls. II. Environmental and genetic effects on non-return rates of young bulls , 1994 .