Association analysis between feed efficiency and expression of key genes of the avTOR signaling pathway in meat-type ducks
暂无分享,去创建一个
Jiafa Wang | Z. Geng | Sihua Jin | Lei Yang | Tingting He | Yuan Xu | Zhiqiang Lin | H. Zang
[1] S. Dokudovskaya,et al. mTORC1 pathway in DNA damage response. , 2018, Biochimica et biophysica acta. Molecular cell research.
[2] M. Carriquiry,et al. Hepatic mitochondrial function in Hereford steers with divergent residual feed intake phenotypes. , 2018, Journal of animal science.
[3] S. Moore,et al. Development and validation of a small SNP panel for feed efficiency in beef cattle. , 2018, Journal of animal science.
[4] M. Rothschild,et al. Genetic parameters and expected responses to selection for components of feed efficiency in a Duroc pig line , 2017, Genetics Selection Evolution.
[5] Fadi Li,et al. Association of residual feed intake with growth and slaughtering performance, blood metabolism, and body composition in growing lambs , 2017, Scientific Reports.
[6] J. Kong,et al. Comparative transcriptome analysis of the Pacific White Shrimp (Litopenaeus vannamei) muscle reveals the molecular basis of residual feed intake , 2017, Scientific Reports.
[7] Yiguo Wang,et al. mTORC1 signaling in hepatic lipid metabolism , 2017, Protein & Cell.
[8] Zhe Zhang,et al. Combination analysis of genome-wide association and transcriptome sequencing of residual feed intake in quality chickens , 2016, BMC Genomics.
[9] N. Anthony,et al. Differential expression of feeding-related hypothalamic neuropeptides in the first generation of quails divergently selected for low or high feed efficiency , 2016, Neuropeptides.
[10] Y. Xi,et al. Biological mechanisms related to differences in residual feed intake in dairy cows. , 2016, Animal : an international journal of animal bioscience.
[11] J. Lee,et al. Transcriptomic differences of genes in the avian target of rapamycin (avTOR) pathway in a divergent line of meat-type chickens selected for feed efficiency. , 2016, Genetics and molecular research : GMR.
[12] Jianmin Luo,et al. Silybin suppresses cell proliferation and induces apoptosis of multiple myeloma cells via the PI3K/Akt/mTOR signaling pathway. , 2016, Molecular medicine reports.
[13] Shuhong Zhao,et al. Transcriptome analysis of mRNA and miRNA in skeletal muscle indicates an important network for differential Residual Feed Intake in pigs , 2015, Scientific Reports.
[14] A. Saltiel,et al. Phosphoinositides: Key modulators of energy metabolism. , 2015, Biochimica et biophysica acta.
[15] Hehe Liu,et al. The Regulation of Lipid Deposition by Insulin in Goose Liver Cells Is Mediated by the PI3K-AKT-mTOR Signaling Pathway , 2015, PloS one.
[16] S. Aggrey,et al. Transcriptomic analysis to elucidate the molecular mechanisms that underlie feed efficiency in meat-type chickens , 2015, Molecular Genetics and Genomics.
[17] S. Aggrey,et al. Genetic properties of residual feed intakes for maintenance and growth and the implications of error measurement. , 2015, Journal of animal science.
[18] J. Negrão,et al. Residual feed intake and blood variables in young Nellore cattle. , 2015, Journal of animal science.
[19] Y. Billon,et al. Divergent selection for residual feed intake in group-housed growing pigs: characteristics of physical and behavioural activity according to line and sex. , 2014, Animal : an international journal of animal bioscience.
[20] Xu Zheng,et al. Current Models of Mammalian Target of Rapamycin Complex 1 (mTORC1) Activation by Growth Factors and Amino Acids , 2014, International journal of molecular sciences.
[21] S. Moore,et al. Analysis of biological networks and biological pathways associated with residual feed intake in beef cattle. , 2014, Animal science journal = Nihon chikusan Gakkaiho.
[22] Shakir Ali,et al. Recent development in targeting PI3K-Akt-mTOR signaling for anticancer therapeutic strategies. , 2013, Anti-cancer agents in medicinal chemistry.
[23] S. Aggrey,et al. Dissection of Koch's residual feed intake: implications for selection. , 2013, Poultry science.
[24] Sang Gyun Kim,et al. Nutrient regulation of the mTOR Complex 1 signaling pathway , 2013, Molecules and cells.
[25] D. Hardie,et al. AMPK: a nutrient and energy sensor that maintains energy homeostasis , 2012, Nature Reviews Molecular Cell Biology.
[26] Nicholas T. Ingolia,et al. The translational landscape of mTOR signalling steers cancer initiation and metastasis , 2012, Nature.
[27] J. Lee,et al. Gene expression in breast muscle associated with feed efficiency in a single male broiler line using a chicken 44K oligo microarray. I. Top differentially expressed genes. , 2011, Poultry science.
[28] J. Blenis,et al. The Ras-ERK and PI3K-mTOR pathways: cross-talk and compensation. , 2011, Trends in biochemical sciences.
[29] S. Aggrey,et al. Genetic properties of feed efficiency parameters in meat-type chickens , 2010, Genetics Selection Evolution.
[30] B. Hemmings,et al. Differential Effects of Protein Kinase B/Akt Isoforms on Glucose Homeostasis and Islet Mass , 2009, Molecular and Cellular Biology.
[31] J. Auwerx,et al. Adipose-specific knockout of raptor results in lean mice with enhanced mitochondrial respiration. , 2008, Cell metabolism.
[32] T. Rideout,et al. The mammalian target of rapamycin-signaling pathway in regulating metabolism and growth. , 2008, Journal of animal science.
[33] C. Berri,et al. Tissue-specific regulation of S6K1 by insulin in chickens divergently selected for growth. , 2008, General and comparative endocrinology.
[34] C. Proud,et al. Amino acids and mTOR signalling in anabolic function. , 2007, Biochemical Society transactions.
[35] R. Seeley,et al. The role of CNS fuel sensing in energy and glucose regulation. , 2007, Gastroenterology.
[36] D. Guertin,et al. Ablation in mice of the mTORC components raptor, rictor, or mLST8 reveals that mTORC2 is required for signaling to Akt-FOXO and PKCalpha, but not S6K1. , 2006, Developmental cell.
[37] George Thomas,et al. Hypothalamic mTOR Signaling Regulates Food Intake , 2006, Science.
[38] A. Marette,et al. Increased activation of the mammalian target of rapamycin pathway in liver and skeletal muscle of obese rats: possible involvement in obesity-linked insulin resistance. , 2005, Endocrinology.
[39] Johan Auwerx,et al. Absence of S6K1 protects against age- and diet-induced obesity while enhancing insulin sensitivity , 2004, Nature.
[40] N. Sonenberg,et al. Upstream and downstream of mTOR. , 2004, Genes & development.
[41] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[42] Robert M. Koch,et al. Efficiency of Feed Use in Beef Cattle , 1963 .
[43] T. Alam,et al. Expression of genes involved in energy homeostasis in the duodenum and liver of Holstein-Friesian and Jersey cows and their F(1) hybrid. , 2012, Physiological genomics.
[44] M. McGee,et al. Effect of divergence in residual feed intake on feeding behavior, blood metabolic variables, and body composition traits in growing beef heifers. , 2010, Journal of animal science.