Genetic approaches to the improvement of fertility traits in the pig.
暂无分享,去创建一个
[1] D. Pomp,et al. Applying functional genomics research to the study of pig reproduction. , 2020, Reproduction (Cambridge, England) Supplement.
[2] E. Knol,et al. Prenatal development as a predisposing factor for perinatal losses in pigs. , 2020, Reproduction (Cambridge, England) Supplement.
[3] J. Yelich,et al. Regulation of conceptus development and attachment in pigs. , 2020, Journal of reproduction and fertility. Supplement.
[4] Ford Sp. Embryonic and fetal development in different genotypes in pigs. , 2020, Journal of reproduction and fertility. Supplement.
[5] P. Dziuk. Effect of migration, distribution and spacing of pig embryos on pregnancy and fetal survival. , 2020, Journal of reproduction and fertility. Supplement.
[6] R. Einspanier,et al. Identification of the EGF/EGF-R system in the oviduct and endometrium of pigs in early stages of pregnancy and early conceptus. , 2009, Experimental and clinical endocrinology & diabetes : official journal, German Society of Endocrinology [and] German Diabetes Association.
[7] L. Andersson,et al. A comprehensive linkage map of the pig based on a wild pig-Large White intercross. , 2009, Animal genetics.
[8] M. Rothschild,et al. Integration of the PiGMaP and USDA maps for porcine chromosome 14. , 2009, Animal genetics.
[9] M. Groenen,et al. Alignment of the PiGMaP and USDA linkage maps of porcine chromosomes 3 and 9. , 2009, Animal genetics.
[10] C. Drögemüller,et al. Evidence of a new leukemia inhibitory factor-associated genetic marker for litter size in a synthetic pig line. , 2005, Journal of animal science.
[11] R. Christenson,et al. Allelic variation in the erythropoietin receptor gene is associated with uterine capacity and litter size in swine. , 2005, Animal genetics.
[12] J. Wolf,et al. Impact of the ESR gene on litter size and production traits in Czech Large White pigs. , 2004, Animal genetics.
[13] C. Óvilo,et al. Mapping of the porcine oestrogen receptor 2 gene and association study with litter size in Iberian pigs. , 2004, Animal genetics.
[14] O. Distl,et al. Estimation of genetic parameters for litter size as a sow and boar trait in German herdbook Landrace and Pietrain swine , 2004 .
[15] J. Noguera,et al. Estrogen receptor polymorphism in Landrace pigs and its association with litter size performance , 2003 .
[16] E. M. Campbell,et al. Fine mapping a quantitative trait locus affecting ovulation rate in swine on chromosome 8. , 2003, Journal of animal science.
[17] J. Ross,et al. Analysis and characterization of differential gene expression during rapid trophoblastic elongation in the pig using suppression subtractive hybridization , 2003, Reproductive biology and endocrinology : RB&E.
[18] A. Archibald,et al. No detectable association of the ESR PvuII mutation with sow productivity in a Meishan x Large White F2 population. , 2002, Animal genetics.
[19] E. Knol,et al. Differences in late prenatal development as an explanation for genetic differences in piglet survival , 2002 .
[20] Nathalie Quiniou,et al. Variation of piglets’ birth weight and consequences on subsequent performance , 2002 .
[21] E. Knol. Genetic aspects of piglet survival , 2002 .
[22] K. M. Irvin,et al. Examination of the relationship between the estrogen receptor gene and reproductive traits in swine. , 2002, Journal of animal science.
[23] M. E. Wilson,et al. Differential expression of cyclooxygenase-2 around the time of elongation in the pig conceptus. , 2002, Animal reproduction science.
[24] C. Haley,et al. Quantitative Trait Loci Analysis in Animals , 2002, Heredity.
[25] B. Brenig,et al. Characterization and comparative mapping of the porcine CTSL gene indicates a novel synteny between HSA9q21→q22 and SSC10q11→q12 , 2002, Cytogenetic and Genome Research.
[26] B. Brenig,et al. Assignment of the porcine epidermal growth factor (EGF) gene to SSC8q2.3-q2.4 by fluorescence in situ hybridization and radiation hybrid mapping. , 2002, Animal Genetics.
[27] F. Bazer,et al. Analysis of Osteopontin at the Maternal-Placental Interface in Pigs1 , 2002, Biology of reproduction.
[28] M. Groenen,et al. Detection and characterization of quantitative trait loci for growth and reproduction traits in pigs , 2001 .
[29] O. Distl,et al. Candidate gene markers for litter size in different German pig lines. , 2001, Journal of animal science.
[30] L. Alexander,et al. Generation and exploration of a dense genetic map in a region of a QTL affecting corpora lutea in a Meishan × Yorkshire cross , 2001, Mammalian Genome.
[31] B. Brenig,et al. Molecular characterization and chromosome assignment of the porcine gene for leukemia inhibitory factor LIF , 2001, Cytogenetic and Genome Research.
[32] R. Christenson,et al. Characterization of uterine epidermal growth factor during early pregnancy in pigs. , 2001, Domestic animal endocrinology.
[33] E. Knol,et al. Estimates of genetic parameters for reproduction traits at different parities in Dutch Landrace pigs , 2001 .
[34] D. Pomp,et al. Identification of quantitative trait loci affecting reproduction in pigs. , 2001, Journal of animal science.
[35] D. Milan,et al. Comparative mapping between humans and pigs: localization of 58 anchorage markers (TOASTs) by use of porcine somatic cell and radiation hybrid panels , 2000, Mammalian Genome.
[36] K. Choo,et al. Identification of genes expressed in the epithelium of porcine oviduct containing early embryos at various stages of development , 2000, Molecular reproduction and development.
[37] T. Sonstegard,et al. Porcine erythropoietin receptor: molecular cloning and expression in embryonic and fetal liver. , 2000, Domestic animal endocrinology.
[38] T. Modric,et al. Pregnancy-dependent expression of leukaemia inhibitory factor (LIF), LIF receptor-beta and interleukin-6 (IL-6) messenger ribonucleic acids in the porcine female reproductive tract. , 2000, Placenta.
[39] M. E. Wilson,et al. Differential gene expression during elongation in the preimplantation pig embryo , 2000, Genesis.
[40] E. Kalm,et al. Die Selektion auf Wurfgröße beim Schwein , 1999 .
[41] M. Wilson,et al. Novel insight into the control of litter size in pigs, using placental efficiency as a selection tool. , 1999, Journal of animal science.
[42] G. Rohrer,et al. Identification of quantitative trait loci affecting female reproductive traits in a multigeneration Meishan-White composite swine population. , 1999, Journal of animal science.
[43] C. Beattie,et al. Cytogenetic assignment of 53 microsatellites from the USDA-MARC porcine genetic map , 1999, Cytogenetic and Genome Research.
[44] M. Wilson,et al. The impacts of uterine environment and fetal genotype on conceptus size and placental vascularity during late gestation in pigs. , 1999, Journal of animal science.
[45] D. Pomp,et al. Mapping of the Prostaglandin-Endoperoxide Synthase 2 (PTGS2) gene to porcine chromosome 9 and bovine chromosome 16 by linkage analysis using novel PCR-RFLP. , 1999, Journal of animal science.
[46] L. Giudice. Genes associated with embryonic attachment and implantation and the role of progesterone. , 1999, The Journal of reproductive medicine.
[47] M. Rothschild,et al. Epidermal growth factor maps to pig chromosome 8. , 1999, Journal of animal science.
[48] A. Webb. Objectives and strategies in pig improvement: an applied perspective. , 1998, Journal of dairy science.
[49] D. Pomp,et al. Expression of an inter-α-trypsin inhibitor heavy chain-like protein in the pig endometrium during the oestrous cycle and early pregnancy , 1998 .
[50] M. E. Wilson,et al. The impact of either a Meishan or Yorkshire uterus on Meishan or Yorkshire fetal and placental development to days 70, 90, and 110 of gestation. , 1998, Journal of animal science.
[51] M. Wilson,et al. Development of Meishan and Yorkshire littermate conceptuses in either a Meishan or Yorkshire uterine environment to day 90 of gestation and to term. , 1998, Biology of reproduction.
[52] C. Tuggle,et al. Effect of the estrogen receptor locus on reproduction and production traits in four commercial pig lines. , 1997, Journal of animal science.
[53] E. Wintour,et al. Developmental regulation of erythropoietin and erythropoiesis. , 1997, American journal of physiology. Regulatory, integrative and comparative physiology.
[54] D. Pomp,et al. Ontogeny of elongation and gene expression in the early developing porcine conceptus. , 1997, Biology of reproduction.
[55] S. Dey,et al. Multiple Female Reproductive Failures in Cyclooxygenase 2–Deficient Mice , 1997, Cell.
[56] C. Tuggle,et al. Prolactin receptor maps to pig Chromosome 16 , 1997, Mammalian Genome.
[57] N. Toyoda,et al. Effects of epidermal growth factor on preimplantation mouse embryos , 1997, Journal of Assisted Reproduction and Genetics.
[58] D. Pomp,et al. Detection of transcripts for retinoic acid receptors, retinol-binding protein, and transforming growth factors during rapid trophoblastic elongation in the porcine conceptus. , 1997, Biology of reproduction.
[59] G. Rohrer,et al. Evidence for quantitative trait loci affecting ovulation rate in pigs. , 1997, Journal of animal science.
[60] M. Rothschild,et al. The use of selection experiments for detecting quantitative trait loci. , 1997, Genetical research.
[61] M. Green,et al. Molecular cloning of spermidine/spermine N1-acetyltransferase from the periimplantation porcine uterus by messenger ribonucleic acid differential display: temporal and conceptus-modulated gene expression. , 1996, Endocrinology.
[62] D. Brigstock,et al. High molecular mass forms of epidermal growth factor in pig uterine secretions. , 1996, Journal of reproduction and fertility.
[63] Aaron P. Campbell,et al. Suppression subtractive hybridization: a method for generating differentially regulated or tissue-specific cDNA probes and libraries. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[64] L. Alexander,et al. A comprehensive map of the porcine genome. , 1996, Genome research.
[65] P. Savatier,et al. Withdrawal of differentiation inhibitory activity/leukemia inhibitory factor up-regulates D-type cyclins and cyclin-dependent kinase inhibitors in mouse embryonic stem cells. , 1996, Oncogene.
[66] Hein,et al. The estrogen receptor locus is associated with a major gene influencing litter size in pigs. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[67] E. Lander,et al. Genetic dissection of complex traits: guidelines for interpreting and reporting linkage results , 1995, Nature Genetics.
[68] A. Piñeiro,et al. The major acute phase serum protein in pigs is homologous to human plasma kallikrein sensitive PK‐120 , 1995, FEBS letters.
[69] J. Gibson,et al. Balancing selection response and rate of inbreeding by including genetic relationships in selection decisions , 1995, Theoretical and Applied Genetics.
[70] Francis S. Collins,et al. Positional cloning moves from perditional to traditional , 1995, Nature Genetics.
[71] C. Haley,et al. Comparative farrowing to weaning performance in Meishan and Large White pigs and their crosses. , 1995 .
[72] C. Haley,et al. Comparative reproductive performance in Meishan and Large White pigs and their crosses , 1995 .
[73] Muladno,et al. The PiGMaP consortium linkage map of the pig (Sus scrofa) , 1995, Mammalian Genome.
[74] G. Besner,et al. Purification of heparin-binding epidermal growth factor-like growth factor from pig uterine luminal flushings, and its production by endometrial tissues. , 1995, Biology of reproduction.
[75] J. Woolliams,et al. Strategies for controlling rates of inbreeding in MOET nucleus schemes for beef cattle , 1994, Genetics Selection Evolution.
[76] H. Ellegren,et al. A physically anchored linkage map of pig chromosome 1 uncovers sex- and position-specific recombination rates. , 1994, Genomics.
[77] N. Wray,et al. Increasing long-term response to selection , 1994, Genetics Selection Evolution.
[78] C. Stewart,et al. Leukaemia inhibitory factor and the regulation of pre-implantation development of the mammalian embryo. , 1994, Molecular reproduction and development.
[79] I. Anegon,et al. Presence of leukaemia inhibitory factor and interleukin 6 in porcine uterine secretions prior to conceptus attachment. , 1994, Cytokine.
[80] M. Soller. Marker assisted selection ‐ an overview , 1994 .
[81] L. Andersson,et al. A primary linkage map of the porcine genome reveals a low rate of genetic recombination. , 1994, Genetics.
[82] J. Uilenbroek,et al. Folliculogenesis in hypophysectomized rats after treatment with recombinant human follicle-stimulating hormone. , 1994, Biology of reproduction.
[83] R. Geisert,et al. Embryonic Mortality in Domestic Species , 1994 .
[84] T. Vaughan,et al. Expression of the genes for the epidermal growth factor receptor and its ligands in porcine oviduct and endometrium. , 1994, Biology of reproduction.
[85] R. Lande,et al. Simulation of marker assisted selection in hybrid populations. , 1994, Genetical research.
[86] F. Bazer,et al. Retinol-binding protein gene expression in cyclic and pregnant endometrium of pigs, sheep, and cattle. , 1993, Biology of reproduction.
[87] E. Lander,et al. A genetic linkage map of the mouse: current applications and future prospects. , 1993, Science.
[88] P. Herpin,et al. Effect of selection for lean tissue growth on body composition and physiological state of the pig at birth. , 1993, Journal of animal science.
[89] M. Skinner,et al. Extrahepatic expression of fibrinogen by granulosa cells: potential role in ovulation. , 1993, Endocrinology.
[90] W. Zhang,et al. Simulation of marker-assisted selection utilizing linkage disequilibrium: the effects of several additional factors , 1993, Theoretical and Applied Genetics.
[91] G. S. Greenwald,et al. Hypophysectomy of the cyclic mouse. II. Effects of follicle-stimulating hormone (FSH) and luteinizing hormone on folliculogenesis, FSH and human chorionic gonadotropin receptors, and steroidogenesis. , 1993, Biology of reproduction.
[92] C. Stewart,et al. Blastocyst implantation depends on maternal expression of leukaemia inhibitory factor , 1992, Nature.
[93] A. Pardee,et al. Differential display of eukaryotic messenger RNA by means of the polymerase chain reaction. , 1992, Science.
[94] P. Waterhouse,et al. Regulated temporal and spatial expression of the calcium‐binding proteins calcyclin and opn (osteopontin) in mouse tissues during pregnancy , 1992, Molecular reproduction and development.
[95] R. C. Jaffe,et al. Immunocytochemical localization and messenger ribonucleic acid levels of a progesterone-dependent endometrial secretory protein (cathepsin L) in the pregnant cat uterus. , 1992, Biology of reproduction.
[96] S. Dey,et al. Characterization of the epidermal growth factor receptor in preimplantation pig conceptuses. , 1992, Developmental biology.
[97] M. Krause,et al. Epidermal growth factor receptors in porcine endometrium: binding characteristics and the regulation of prostaglandin E and F2 alpha production. , 1992, Biology of reproduction.
[98] D. Hilton. LIF: lots of interesting functions. , 1992, Trends in biochemical sciences.
[99] C. Thut,et al. Leukemia inhibitory factor receptor is structurally related to the IL‐6 signal transducer, gp130. , 1991, The EMBO journal.
[100] Stephen K. Smith,et al. Epidermal growth factor in human endometrium: proliferative effects in culture and immunocytochemical localization in normal and endometriotic tissues. , 1991, Human reproduction.
[101] A. Craig,et al. The murine gene encoding secreted phosphoprotein 1 (osteopontin): promoter structure, activity, and induction in vivo by estrogen and progesterone. , 1991, Gene.
[102] F. Bazer,et al. Reorientation of prostaglandin F secretion by calcium ionophore, estradiol, and prolactin in perifused porcine endometrium. , 1990, Endocrinology.
[103] S. Dey,et al. Preimplantation embryo development in vitro: cooperative interactions among embryos and role of growth factors. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[104] P. Barker,et al. Purification and characterization of heparin-binding growth factors from porcine uterus. , 1990, The Biochemical journal.
[105] J. Fransson,et al. Epidermal Growth , 1988, International journal of dermatology.
[106] F. Collins,et al. Construction of a general human chromosome jumping library, with application to cystic fibrosis. , 1987, Science.
[107] A. Locatelli,et al. Components of prolificacy in hyperprolific Large White sows compared with the Meishan and Large White breeds , 1986, Génétique, sélection, évolution.
[108] J. McLachlan,et al. Proliferation of mouse uterine epithelial cells in vitro. , 1986, Endocrinology.
[109] A. Barrett,et al. Elastinolytic activity of human cathepsin L. , 1986, The Biochemical journal.
[110] G. L. Bennett,et al. Simulation of Genetic Changes in Life Cycle Efficiency of Pork Production, II. Effects of Components on Efficiency , 1983 .
[111] G. L. Bennett,et al. Simulation of Genetic Changes in Life Cycle Efficiency of Pork Production. I. A Bioeconomic Model , 1983 .
[112] A. Barrett,et al. Action of rat liver cathepsin L on collagen and other substrates. , 1982, The Biochemical journal.
[113] S. Elangovan,et al. Blastocyst implantation in the rat and the immunohistochemical distribution and rate of synthesis of uterine lysosomal cathepsin D. , 1980, Biology of reproduction.
[114] L. Anderson. Growth, protein content and distribution of early pig embryos , 1978, The Anatomical record.
[115] P. Dziuk. Effect of number of embryos and uterine space on embryo survival in the pig. , 1968, Journal of animal science.
[116] P. Miklas,et al. Marker-Assisted Selection , 2005 .
[117] V. Dantzer. Electron microscopy of the initial stages of placentation in the pig , 2004, Anatomy and Embryology.
[118] A. King,et al. Mapping quantitative trait loci affecting female reproductive traits on porcine chromosome 8. , 2003, Biology of reproduction.
[119] J. Dekkers,et al. Multifactorial genetics: The use of molecular genetics in the improvement of agricultural populations , 2002, Nature Reviews Genetics.
[120] B. Kirkpatrick. QTL and candidate gene effects on reproduction in livestock: progress and prospects. , 2002 .
[121] R. Blouin,et al. Identification by subtractive hybridization of the most promising genes related to embryo survival in early gestating sows. , 2002 .
[122] T. van der Lende,et al. The effect of estrogen receptor genotype on litter size and placental traits at term in F2 crossbred gilts. , 2002, Theriogenology.
[123] D. Pomp,et al. RNA expression profiling of ovarian follicle development in swine lines selected for increased ovulation rate. , 2002 .
[124] C. Haley,et al. MAPPING OF QTLS FOR PROLIFICACY TRAITS ON SSC8 USING A CANDIDATE GENE APPROACH , 2002 .
[125] D. Pomp,et al. Candidate gene analysis for loci affecting litter size and ovulation rate in swine. , 2001, Journal of animal science.
[126] Ricarda Steinheuer. Schätzung von Varianzkomponenten und Kandidatengeneffekten für die paternale und maternale Komponente von Fruchtbarkeitsmerkmalen beim Schwein , 2001 .
[127] M. Province,et al. Genetic dissection of complex traits , 2001 .
[128] E. M. Campbell,et al. Physical assignment of the porcine erythropoietin receptor gene to SSC2. , 2000, Animal genetics.
[129] M. Rothschild,et al. Investigation of the retinol-binding protein 4 (RBP4) gene as a candidate gene for increased litter size in pigs , 2000, Mammalian Genome.
[130] Kefei Chen,et al. [The genetic effect of estrogen receptor(ESR) on litter size traits in pig]. , 2000, Yi chuan xue bao = Acta genetica Sinica.
[131] A. Daza,et al. The effect of maternal and litter factors on piglet mortality rate , 1999 .
[132] C. Tuggle,et al. The Prolactin Receptor Gene is Associated with Increased Litter Size In Pigs , 1998 .
[133] Alan L. Clark. Animal breeding : technology for the 21st century , 1998 .
[134] F. A. Fireman,et al. Efeito do peso ao nacer sobre a mortalidade de leitoes do nascimento ate 21 dias de idade , 1997 .
[135] R. Blair,et al. Characterization and proteolytic activity of a cathepsin L-like polypeptide in endometrium and uterine flushings of cycling, pregnant and steroid-treated ovariectomized gilts. , 1997, Reproduction, fertility, and development.
[136] D. Brigstock,et al. Pig uterine luminal fluid contains the developmentally regulated neurotrophic factor, pleiotrophin. , 1996, The Journal of endocrinology.
[137] C. Haley,et al. Alignment of the PiGMaP and USDA linkage maps of porcine chromosomes 2 and 5. , 1995, Animal genetics.
[138] M. Yerle,et al. PCR amplification and physical localization of the genes for pig FSHB and LHB. , 1995, Cytogenetics and cell genetics.
[139] L. Alexander,et al. A microsatellite linkage map of the porcine genome. , 1994, Genetics.
[140] D. L. Harris,et al. Genetic progress of the US Yorkshire breed. , 1994 .
[141] D. McLaren,et al. Relationships between growth and litter traits in pig dam lines. , 1994 .
[142] C. Haley,et al. Genetic basis of prolificacy in Meishan pigs. , 1993, Journal of reproduction and fertility. Supplement.
[143] Usa Serono Symposia,et al. Preimplantation Embryo Development , 1993, Serono Symposia, USA Norwell, Massachusetts.
[144] N. Lemoine,et al. The type 1 (EGFR-related) family of growth factor receptors and their ligands. , 1992, Progress in growth factor research.
[145] D. Metcalf. Leukemia inhibitory factor--a puzzling polyfunctional regulator. , 1992, Growth factors.
[146] A. D. Vries,et al. A model to estimate economic values of traits in pig breeding. , 1989 .
[147] W. Pond,et al. Factors affecting growth and survival of neonatal genetically obese and lean swine: cross fostering experiments. , 1984, Growth.
[148] Jeffrey C. Hall,et al. Advances in Genetics , 1947 .
[149] L. Ang,et al. Control of Development in Higher Plants, P.R. Bell, R.I. Pennell, C.J. Leaver (Eds.). The Royal Society (1995), 0962 8436 , 1996 .