A Genome-Wide Association Study of the Chest Circumference Trait in Xinjiang Donkeys Based on Whole-Genome Sequencing Technology
暂无分享,去创建一个
[1] Guiqin Liu,et al. Characterization of donkey-meat flavor profiles by GC–IMS and multivariate analysis , 2023, Frontiers in Nutrition.
[2] Shenming Zeng,et al. Genome-wide association study to identify SNPs and candidate genes associated with body size traits in donkeys , 2023, Frontiers in Genetics.
[3] M. Abd-Elkareem,et al. Silver nanoparticles and platelet-rich fibrin accelerate tendon healing in donkey , 2023, Scientific Reports.
[4] M. Iquebal,et al. Milk from Halari Donkey Breed: Nutritional Analysis, Vitamins, Minerals, and Amino Acids Profiling , 2023, Foods.
[5] T. Aluwong,et al. Effects of packing (load carrying) on body temperatures and their circadian rhythms in donkeys (Equus asinus) during the hot-dry season. , 2023, Journal of thermal biology.
[6] Yuhua Li,et al. Polymorphism detection of PRKG2 gene and its association with the number of thoracolumbar vertebrae and carcass traits in Dezhou donkey , 2023, BMC Genomic Data.
[7] V. Gomez-Arrones,et al. First report and molecular characterization of cases of natural Taylorella asinigenitalis infection in three donkey breeds in Spain. , 2022, Veterinary microbiology.
[8] G. Restrepo Betancur,et al. Donkey semen cryopreservation: alternatives with permeable, non-permeable cryoprotectants and seminal plasma. , 2022, Reproduction in domestic animals = Zuchthygiene.
[9] R. Vago,et al. Wnt Signaling in the Development of Bone Metastasis , 2022, Cells.
[10] Changfa Wang,et al. A Novel A > G Polymorphism in the Intron 1 of LCORL Gene Is Significantly Associated with Hide Weight and Body Size in Dezhou Donkey , 2022, Animals : an open access journal from MDPI.
[11] M. Feitosa,et al. Evaluation of GENESIS, SAIGE, REGENIE and fastGWA-GLMM for genome-wide association studies of binary traits in correlated data , 2022, Frontiers in Genetics.
[12] C. Lei,et al. Genome-wide analysis reveals selection signatures for body size and drought adaptation in Liangzhou donkey. , 2022, Genomics.
[13] K. S. Kim,et al. Refining the Camelus dromedarius Myostatin Gene Polymorphism through Worldwide Whole-Genome Sequencing , 2022, Animals : an open access journal from MDPI.
[14] Zhongping Wu,et al. An imputation-based genome-wide association study for growth and fatness traits in Sujiang pigs. , 2022, Animal : an international journal of animal bioscience.
[15] Rizwan Ahmed Khan,et al. A preliminary assessment of hoof morphometry in a population of lame and non-lame working donkeys in Pakistan. , 2022, Equine veterinary journal.
[16] Mingfeng Jiang,et al. Genome-Wide Association Study of Body Weight Trait in Yaks , 2022, Animals : an open access journal from MDPI.
[17] H. Kitagawa,et al. Relationships between the age and blood test results or body sizes in Noma horses , 2022, Journal of equine science.
[18] E. Sorantin,et al. Cross-sectional chest circumference and shape development in infants , 2022, BMC research notes.
[19] M. Moaeen-Ud-Din,et al. Genome wide association study identifies novel candidate genes for growth and body conformation traits in goats , 2022, Scientific Reports.
[20] Hai-Jun Li,et al. An analysis of skin thickness in the Dezhou donkey population and identification of candidate genes by RNA-seq. , 2022, Animal genetics.
[21] S. Marelli,et al. Morphological Characterization of Two Light Italian Turkey Breeds , 2022, Animals : an open access journal from MDPI.
[22] Fali Zhang,et al. Comparative Transcriptomics Uncover the Uniqueness of Oocyte Development in the Donkey , 2022, Frontiers in Genetics.
[23] M. H. Banabazi,et al. Weighted single-step GWAS for body mass index and scans for recent signatures of selection in Yorkshire pigs. , 2022, The Journal of heredity.
[24] Hui Zhang,et al. Genome-wide association studies for growth traits in broilers , 2022, BMC genomic data.
[25] S. Gaouar,et al. Morphobiometric characterization of donkey resources in the extreme west of Algeria , 2022, GABJ.
[26] M. Gholizadeh,et al. Meta-analysis of genome-wide association studies for litter size in sheep. , 2021, Theriogenology.
[27] José Luis Zepeda-Batista,et al. Discovering of Genomic Variations Associated to Growth Traits by GWAS in Braunvieh Cattle , 2021, Genes.
[28] W. Freeman,et al. Long‐term, induced expression of Hand2 in peripheral sympathetic neurons ameliorates sarcopenia in geriatric mice , 2021, Journal of cachexia, sarcopenia and muscle.
[29] C. Lei,et al. A novel 31bp deletion within the CDKL5 gene is significantly associated with growth traits in Dezhou donkey , 2021, Animal biotechnology.
[30] J. Zhou,et al. Genome-wide association study reveals a quantitative trait locus and two candidate genes on Sus scrofa chromosome 5 affecting intramuscular fat content in Suhuai pigs. , 2021, Animal : an international journal of animal bioscience.
[31] Xubin Lu,et al. Genome-Wide Association Study Identifies Candidate Genes Associated with Feet and Leg Conformation Traits in Chinese Holstein Cattle , 2021, Animals : an open access journal from MDPI.
[32] Xuewei Li,et al. A combined GWAS approach reveals key loci for socially-affected traits in Yorkshire pigs , 2021, Communications biology.
[33] Hong Chen,et al. Genomic analyses reveal distinct genetic architectures and selective pressures in Chinese donkeys. , 2021, Journal of genetics and genomics = Yi chuan xue bao.
[34] Abulimiti Kelimu,et al. Donkey Industry in China: Current Aspects, Suggestions and Future Challenges. , 2021, Journal of equine veterinary science.
[35] Hai-Jun Li,et al. A novel A > G polymorphism in the intron 2 of TBX3 gene is significantly associated with body size in donkeys. , 2021, Gene.
[36] J. Ryding,et al. Global donkey and mule populations: Figures and trends , 2021, PloS one.
[37] Hong Chen,et al. Assessing genomic diversity and signatures of selection in Jiaxian Red cattle using whole-genome sequencing data , 2021, BMC Genomics.
[38] Gonçalo Abecasis,et al. Computationally efficient whole-genome regression for quantitative and binary traits , 2020, Nature Genetics.
[39] Hai-Jun Li,et al. Tissue expression profile, polymorphism of IGF1 gene and its effect on body size traits of Dezhou donkey. , 2020, Gene.
[40] E. Ciani,et al. Fifteen Shades of Grey: Combined Analysis of Genome-Wide SNP Data in Steppe and Mediterranean Grey Cattle Sheds New Light on the Molecular Basis of Coat Color , 2020, Genes.
[41] Qiang Li,et al. STIM1 controls calcineurin/Akt/mTOR/NFATC2-mediated osteoclastogenesis induced by RANKL/M-CSF , 2020, Experimental and therapeutic medicine.
[42] G. Conte,et al. Combined multivariate factor analysis and GWAS for milk fatty acids trait in Comisana sheep breed. , 2020, Animal genetics.
[43] X. Lan,et al. Detection of insertions/deletions (InDels) within the goat Runx2 gene and their association with litter size and growth traits , 2019, Animal biotechnology.
[44] Wenbo Cui,et al. A novel missense mutation (L280V) within POU1F1 gene strongly affects litter size and growth traits in goat. , 2019, Theriogenology.
[45] Huitong Zhou,et al. Gene polymorphisms in PROP1 associated with growth traits in sheep. , 2019, Gene.
[46] J. Son,et al. Genome-wide analyses of the Jeju, Thoroughbred, and Jeju crossbred horse populations using the high density SNP array , 2018, Genes & Genomics.
[47] A. Jang,et al. Protection effect of donkey hide gelatin hydrolysates on UVB-induced photoaging of human skin fibroblasts , 2018 .
[48] Susan H Slifer,et al. PLINK: Key Functions for Data Analysis , 2018, Current protocols in human genetics.
[49] G. Renaud,et al. Improved de novo genomic assembly for the domestic donkey , 2018, Science Advances.
[50] S. Gaouar,et al. MORPHOMETRIC CHARACTERIZATION AND TYPOLOGY OF DONKEY FARMING (EQUUS ASINUS) IN THE WILAYA OF TLEMCEN , 2018, GABJ.
[51] N. Sutter,et al. Genome‐Wide Scans Reveal a Quantitative Trait Locus for Withers Height in Horses Near the ANKRD1 Gene , 2018 .
[52] D. Antczak,et al. A Frameshift Mutation in KIT is Associated with White Spotting in the Arabian Camel , 2017, Genes.
[53] H. Rohrer,et al. Distinct roles of hand2 in developing and adult autonomic neurons , 2016, Developmental neurobiology.
[54] Hong Chen,et al. A critical functional missense mutation (H173R) in the bovine PROP1 gene significantly affects growth traits in cattle. , 2013, Gene.
[55] A. Korte,et al. The advantages and limitations of trait analysis with GWAS: a review , 2013, Plant Methods.
[56] M. Stephens,et al. Genome-wide Efficient Mixed Model Analysis for Association Studies , 2012, Nature Genetics.
[57] Pablo Cingolani,et al. © 2012 Landes Bioscience. Do not distribute. , 2022 .
[58] E. Goto. Meta-Analysis: Identification of Low Birthweight by Other Anthropometric Measurements at Birth in Developing Countries , 2011, Journal of epidemiology.
[59] B. Jia,et al. Identification of SNPs within the sheep PROP1 gene and their effects on wool traits , 2011, Molecular Biology Reports.
[60] M. DePristo,et al. The Genome Analysis Toolkit: a MapReduce framework for analyzing next-generation DNA sequencing data. , 2010, Genome research.
[61] P. Polidori,et al. Physical and chemical characteristics of donkey meat from Martina Franca breed. , 2009, Meat science.
[62] Gonçalo R. Abecasis,et al. The Sequence Alignment/Map format and SAMtools , 2009, Bioinform..
[63] Richard Durbin,et al. Sequence analysis Fast and accurate short read alignment with Burrows – Wheeler transform , 2009 .
[64] G. Barsh,et al. Hypothalamic neurodegeneration and adult-onset obesity in mice lacking the Ubb polyubiquitin gene , 2008, Proceedings of the National Academy of Sciences.
[65] Manuel A. R. Ferreira,et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. , 2007, American journal of human genetics.
[66] Hong Chen,et al. Effect of genetic variations of the POU1F1 gene on growth traits of Nanyang cattle. , 2006, Yi chuan xue bao = Acta genetica Sinica.
[67] P. Taberlet,et al. African Origins of the Domestic Donkey , 2004, Science.
[68] G. Pavlath,et al. Cell Fusion in Skeletal Muscle: Central Role of NFATC2 in Regulating Muscle Cell Size , 2003, Cell cycle.
[69] G. Pavlath,et al. Prostaglandin F2α stimulates growth of skeletal muscle cells via an NFATC2-dependent pathway , 2003, The Journal of cell biology.
[70] G. Pavlath,et al. Regulation of the Growth of Multinucleated Muscle Cells by an Nfatc2-Dependent Pathway , 2001, The Journal of cell biology.
[71] P. Rondó,et al. Chest circumference as an indicator of intrauterine growth retardation. , 1996, Early human development.