Physiological responses and adaptations to high methane production in Japanese Black cattle
暂无分享,去创建一个
Y. Uemoto | F. Terada | K. Ikuta | S. Roh | E. Iwamoto | Minji Kim | T. Masaki | Koki Nishihara | Makoto Hirai
[1] Y. Uemoto,et al. Changes in the liver transcriptome and physiological parameters of Japanese Black steers during the fattening period , 2021, Scientific Reports.
[2] T. Nishida,et al. The Efficacy of Plant-Based Bioactives Supplementation to Different Proportion of Concentrate Diets on Methane Production and Rumen Fermentation Characteristics In Vitro , 2021, Animals : an open access journal from MDPI.
[3] F. Jourdan,et al. Inhibition of enteric methanogenesis in dairy cows induces changes in plasma metabolome highlighting metabolic shifts and potential markers of emission , 2020, Scientific Reports.
[4] E. Kebreab,et al. Red seaweed (Asparagopsis taxiformis) supplementation reduces enteric methane by over 80 percent in beef steers , 2020, bioRxiv.
[5] T. Ma,et al. Resveratrol affects in vitro rumen fermentation, methane production and prokaryotic community composition in a time‐ and diet‐specific manner , 2020, Microbial biotechnology.
[6] M. Gierliński,et al. Wnt regulates amino acid transporter Slc7a5 and so constrains the integrated stress response in mouse embryos , 2019, EMBO reports.
[7] G. Blackshields,et al. The effect of breed and diet type on the global transcriptome of hepatic tissue in beef cattle divergent for feed efficiency , 2019, BMC Genomics.
[8] T. Pulinilkunnil,et al. Role of branched‐chain amino acid–catabolizing enzymes in intertissue signaling, metabolic remodeling, and energy homeostasis , 2019, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[9] Xianbo Jia,et al. Genetic diversity of ATP8 and ATP6 genes is associated with high-altitude adaptation in yak , 2018, Mitochondrial DNA. Part A, DNA mapping, sequencing, and analysis.
[10] K. Itahana,et al. Emerging Roles of p53 Family Members in Glucose Metabolism , 2018, International journal of molecular sciences.
[11] P. Stothard,et al. Tissues, Metabolic Pathways and Genes of Key Importance in Lactating Dairy Cattle , 2016, Springer Science Reviews.
[12] Jeffrey T Leek,et al. Transcript-level expression analysis of RNA-seq experiments with HISAT, StringTie and Ballgown , 2016, Nature Protocols.
[13] L. V. van Loon,et al. Increasing Insulin Availability Does Not Augment Postprandial Muscle Protein Synthesis Rates in Healthy Young and Older Men. , 2016, The Journal of clinical endocrinology and metabolism.
[14] G. Martinez-Fernandez,et al. Methane Inhibition Alters the Microbial Community, Hydrogen Flow, and Fermentation Response in the Rumen of Cattle , 2016, Front. Microbiol..
[15] S. Donkin,et al. Short communication: Regulation of hepatic gluconeogenic enzymes by dietary glycerol in transition dairy cows. , 2016, Journal of dairy science.
[16] G. Van den Berghe,et al. Soluble RAGE and the RAGE Ligands HMGB1 and S100A12 in Critical Illness: Impact of Glycemic Control with Insulin and Relation with Clinical Outcome , 2015, Shock.
[17] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[18] P. Lancaster,et al. Right Running Head : Hepatic Mitochondrial Function Relationships between residual feed intake and hepatic mitochondrial function in growing beef cattle , 2014 .
[19] Chang S. Chan,et al. Tumor suppressor p53 negatively regulates glycolysis stimulated by hypoxia through its target RRAD , 2014, Oncotarget.
[20] C. Gondro,et al. Hormonal growth implants affect feed efficiency and expression of residual feed intake-associated genes in beef cattle , 2014 .
[21] J. Arthur,et al. The Catalytic Subunit of the System L1 Amino Acid Transporter (Slc7a5) Facilitates Nutrient Signalling in Mouse Skeletal Muscle , 2014, PloS one.
[22] C. Gondro,et al. Expression of candidate genes for residual feed intake in Angus cattle. , 2014, Animal genetics.
[23] M. McGee,et al. Methane emissions, body composition, and rumen fermentation traits of beef heifers differing in residual feed intake. , 2013, Journal of animal science.
[24] Thomas M. O’Connell,et al. The Complex Role of Branched Chain Amino Acids in Diabetes and Cancer , 2013, Metabolites.
[25] E. Kebreab,et al. Energy and protein metabolism and nutrition in sustainable animal production , 2013, Energy and protein metabolism and nutrition in sustainable animal production.
[26] Y. Shoenfeld,et al. Serpins, Immunity and Autoimmunity: Old Molecules, New Functions , 2013, Clinical Reviews in Allergy & Immunology.
[27] W. Zhu,et al. Effect of disodium fumarate on microbial abundance, ruminal fermentation and methane emission in goats under different forage: concentrate ratios. , 2012, Animal : an international journal of animal bioscience.
[28] C. Gondro,et al. Global gene expression profiling reveals genes expressed differentially in cattle with high and low residual feed intake. , 2011, Animal genetics.
[29] Gordon D. Brown,et al. The role of Dectin-1 in the host defence against fungal infections. , 2011, Current opinion in microbiology.
[30] G. Waghorn,et al. Lowering ruminant methane emissions through improved feed conversion efficiency , 2011 .
[31] J. Saxena,et al. A new perspective on the use of plant secondary metabolites to inhibit methanogenesis in the rumen. , 2010, Phytochemistry.
[32] E. Volpi,et al. An increase in essential amino acid availability upregulates amino acid transporter expression in human skeletal muscle. , 2010, American journal of physiology. Endocrinology and metabolism.
[33] Jeffrey P. MacKeigan,et al. Bidirectional Transport of Amino Acids Regulates mTOR and Autophagy , 2009, Cell.
[34] Brad T. Sherman,et al. Bioinformatics enrichment tools: paths toward the comprehensive functional analysis of large gene lists , 2008, Nucleic acids research.
[35] Gordon D. Brown,et al. The fungal pattern recognition receptor, Dectin-1, and the associated cluster of C-type lectin-like receptors , 2008, FEMS microbiology letters.
[36] Jens Pietzsch,et al. Human S100A12: a novel key player in inflammation? , 2009, Amino Acids.
[37] S. Calsamiglia,et al. A review of plant-derived essential oils in ruminant nutrition and production , 2008 .
[38] B. McBride,et al. Subacute ruminal acidosis in dairy cows: the physiological causes, incidence and consequences. , 2008, Veterinary journal.
[39] Brad T. Sherman,et al. Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources , 2008, Nature Protocols.
[40] R. Donato. RAGE: a single receptor for several ligands and different cellular responses: the case of certain S100 proteins. , 2007, Current molecular medicine.
[41] K. Beauchemin,et al. Methane abatement strategies for cattle: Lipid supplementation of diets , 2007 .
[42] D. Foell,et al. Mechanisms of Disease: a 'DAMP' view of inflammatory arthritis , 2007, Nature Clinical Practice Rheumatology.
[43] J. France,et al. Long-term effects of feeding monensin on methane production in lactating dairy cows. , 2007, Journal of dairy science.
[44] U. Singh,et al. Mitochondrial Genome Integrity Mutations Uncouple the Yeast Saccharomyces cerevisiae ATP Synthase* , 2007, Journal of Biological Chemistry.
[45] D. Foell,et al. S100 proteins expressed in phagocytes: a novel group of damage‐associated molecular pattern molecules , 2007, Journal of leukocyte biology.
[46] G. Halliday,et al. Inflammatory S100A9 and S100A12 proteins in Alzheimer's disease , 2006, Neurobiology of Aging.
[47] W. Pavan,et al. Acinar Cell Apoptosis in Serpini2-Deficient Mice Models Pancreatic Insufficiency , 2005, PLoS genetics.
[48] K. Beauchemin,et al. Methane emissions from feedlot cattle fed barley or corn diets. , 2005, Journal of animal science.
[49] Y. Mori,et al. Increased plasma S100A12 (EN-RAGE) levels in patients with type 2 diabetes. , 2004, The Journal of clinical endocrinology and metabolism.
[50] R. Virmani,et al. Morphologic Findings of Coronary Atherosclerotic Plaques in Diabetics: A Postmortem Study , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[51] S. Kanda,et al. Inhibition of ruminal microbial methane production by beta-cyclodextrin iodopropane, malate and their combination in vitro. , 2004, Journal of animal physiology and animal nutrition.
[52] J. L. Kleen,et al. Subacute ruminal acidosis (SARA): a review. , 2003, Journal of veterinary medicine. A, Physiology, pathology, clinical medicine.
[53] T. Nishida,et al. Effect of Fumaric Acid on Methane Production, Rumen Fermentation and Digestibility of Cattle Fed Roughage Alone , 2001 .
[54] D. A. Dwyer,et al. Effects of insulin and postruminal supply of protein on use of amino acids by the mammary gland for milk protein synthesis. , 2000, Journal of dairy science.
[55] J. Sehested,et al. Ruminal transport and metabolism of short-chain fatty acids (SCFA) in vitro: effect of SCFA chain length and pH. , 1999, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[56] M. Neurath,et al. RAGE Mediates a Novel Proinflammatory Axis A Central Cell Surface Receptor for S100/Calgranulin Polypeptides , 1999, Cell.
[57] C. Proud,et al. Molecular mechanisms for the control of translation by insulin. , 1997, The Biochemical journal.
[58] C. Kahn,et al. Overexpression of Rad Inhibits Glucose Uptake in Cultured Muscle and Fat Cells* , 1996, The Journal of Biological Chemistry.
[59] D. Demeyer,et al. Control of rumen methanogenesis , 1996, Environmental monitoring and assessment.
[60] H. Abe,et al. Comparisons of Energy Utilization between Japanese Black and Holstein Steers , 1989 .
[61] T. Sakai,et al. Improvement of Techniques for Liver Biopsy in Dairy Cattle , 1987 .
[62] J. McLean,et al. The significance of carbon dioxide and methane measurements in the estimation of heat production in cattle , 1986, British Journal of Nutrition.
[63] Martín Pa. The effects of polyols and selected starch sources on the metabolism and milk production of dairy cows. , 1986 .
[64] Robert C. Wolpert,et al. A Review of the , 1985 .
[65] E. N. Bergman,et al. Influence of vitamin B-12 status on hepatic propionic acid uptake in sheep. , 1983, Journal of NutriLife.