Life‐long exercise training and inherited aerobic endurance capacity produce converging gut microbiome signatures in rodents
暂无分享,去创建一个
M. Tarnopolsky | K. Foley | L. Koch | S. Britton | J. Schertzer | S. Zlitni | F. F. Anhê | N. Barra | J. Nederveen | M. I. Nilsson
[1] Shiraz A. Shah,et al. Large-scale association analyses identify host factors influencing human gut microbiome composition , 2020, Nature Genetics.
[2] E. Chambers,et al. Short-chain fatty acids as potential regulators of skeletal muscle metabolism and function , 2020, Nature Metabolism.
[3] J. Schertzer,et al. Glucose alters symbiotic relationships between gut microbiota and host physiology. , 2019, American journal of physiology. Endocrinology and metabolism.
[4] D. Scott. Sarcopenia in Older Adults , 2019, Journal of clinical medicine.
[5] D. Schmidt-Arras,et al. Gut microbiota shape ‘inflamm-ageing’ cytokines and account for age-dependent decline in DNA damage repair , 2019, Gut.
[6] J. Woods,et al. Exercise and the Gut Microbiome: A Review of the Evidence, Potential Mechanisms, and Implications for Human Health. , 2019, Exercise and sport sciences reviews.
[7] G. Hunter,et al. Gut microbiota diversity is associated with cardiorespiratory fitness in post‐primary treatment breast cancer survivors , 2019, Experimental physiology.
[8] M. Tarnopolsky,et al. Lifelong aerobic exercise protects against inflammaging and cancer , 2019, PloS one.
[9] K. Foley,et al. Long term but not short term exposure to obesity related microbiota promotes host insulin resistance , 2018, Nature Communications.
[10] E. Chambers,et al. Role of Gut Microbiota-Generated Short-Chain Fatty Acids in Metabolic and Cardiovascular Health , 2018, Current Nutrition Reports.
[11] J. Batsis,et al. Sarcopenic obesity in older adults: aetiology, epidemiology and treatment strategies , 2018, Nature Reviews Endocrinology.
[12] L. Ferrucci,et al. Inflammageing: chronic inflammation in ageing, cardiovascular disease, and frailty , 2018, Nature Reviews Cardiology.
[13] C. Franceschi,et al. Inflammaging: a new immune–metabolic viewpoint for age-related diseases , 2018, Nature Reviews Endocrinology.
[14] R. Andrade,et al. Aging Hallmarks: The Benefits of Physical Exercise , 2018, Front. Endocrinol..
[15] C. Franceschi,et al. The Continuum of Aging and Age-Related Diseases: Common Mechanisms but Different Rates , 2018, Front. Med..
[16] J. Lord,et al. Major features of immunesenescence, including reduced thymic output, are ameliorated by high levels of physical activity in adulthood , 2018, Aging cell.
[17] M. Nokia,et al. Intrinsic aerobic capacity governs the associations between gut microbiota composition and fat metabolism age-dependently in rat siblings. , 2017, Physiological genomics.
[18] Olli Tikkanen,et al. The Association between Cardiorespiratory Fitness and Gut Microbiota Composition in Premenopausal Women , 2017, Nutrients.
[19] P. Rosenstiel,et al. Muramyl Dipeptide-Based Postbiotics Mitigate Obesity-Induced Insulin Resistance via IRF4. , 2017, Cell metabolism.
[20] Elaine Holmes,et al. The microbiome of professional athletes differs from that of more sedentary subjects in composition and particularly at the functional metabolic level , 2017, Gut.
[21] T. Esposito,et al. Exercise Modifies the Gut Microbiota with Positive Health Effects , 2017, Oxidative medicine and cellular longevity.
[22] Carlos López-Otín,et al. Metabolic Control of Longevity , 2016, Cell.
[23] S. Rampelli,et al. Gut Microbiota and Extreme Longevity , 2016, Current Biology.
[24] M. Surette,et al. High-intensity exercise training increases the diversity and metabolic capacity of the mouse distal gut microbiota during diet-induced obesity. , 2016, American journal of physiology. Endocrinology and metabolism.
[25] K. Petersen,et al. Acetate mediates a microbiome-brain-β cell axis promoting metabolic syndrome , 2016, Nature.
[26] A. Marette,et al. SCFAs Take a Toll En Route to Metabolic Syndrome. , 2015, Cell metabolism.
[27] Barbara M. Bakker,et al. Short-Chain Fatty Acids Protect Against High-Fat Diet–Induced Obesity via a PPARγ-Dependent Switch From Lipogenesis to Fat Oxidation , 2015, Diabetes.
[28] M. Surette,et al. Defective NOD2 peptidoglycan sensing promotes diet-induced inflammation, dysbiosis, and insulin resistance , 2015, EMBO molecular medicine.
[29] Angela C. Poole,et al. Human Genetics Shape the Gut Microbiome , 2014, Cell.
[30] V. Viswanathan. Muramyl dipeptide , 2014, Gut microbes.
[31] Nathan R. Qi,et al. Genetic Analysis of a Rat Model of Aerobic Capacity and Metabolic Fitness , 2013, PloS one.
[32] J. Ferreira,et al. A Gut Lipid Messenger Links Excess Dietary Fat to Dopamine Deficiency , 2013, Science.
[33] J. de Magalhães. How ageing processes influence cancer , 2013, Nature Reviews Cancer.
[34] Godfrey L. Smith,et al. Intrinsic Aerobic Capacity Sets a Divide for Aging and Longevity , 2011, Circulation research.
[35] L. Koch,et al. Cardiac function in rats selectively bred for low- and high-capacity running. , 2001, American journal of physiology. Regulatory, integrative and comparative physiology.
[36] L. Koch,et al. Artificial selection for intrinsic aerobic endurance running capacity in rats. , 2001, Physiological genomics.
[37] Y. Benjamini,et al. Controlling the false discovery rate: a practical and powerful approach to multiple testing , 1995 .