Effects of Season and Host Physiological State on the Diversity, Density, and Activity of the Arctic Ground Squirrel Cecal Microbiota
暂无分享,去创建一个
[1] H. Carey,et al. Seasonal changes in mucosal structure and function in ground squirrel intestine. , 1990, The American journal of physiology.
[2] H. Harlow. Muscle Protein and Strength Retention by Bears During Winter Fasting and Starvation , 2012 .
[3] P. Valet,et al. Metabolic adaptation to a high-fat diet is associated with a change in the gut microbiota , 2011, Gut.
[4] C. Buck,et al. Temporal Dynamics of the Cecal Gut Microbiota of Juvenile Arctic Ground Squirrels: a Strong Litter Effect across the First Active Season , 2014, Applied and Environmental Microbiology.
[5] Brian M. Barnes,et al. Temperatures of hibernacula and changes in body composition of arctic ground squirrels over winter , 1999 .
[6] J. Ingraham. GROWTH OF PSYCHROPHILIC BACTERIA , 1958, Journal of bacteriology.
[7] Rob Knight,et al. Seasonal restructuring of the ground squirrel gut microbiota over the annual hibernation cycle. , 2013, American journal of physiology. Regulatory, integrative and comparative physiology.
[8] W. D. de Vos,et al. Genetic Diversity of Viable, Injured, and Dead Fecal Bacteria Assessed by Fluorescence-Activated Cell Sorting and 16S rRNA Gene Analysis , 2005, Applied and Environmental Microbiology.
[9] F. Geiser. EVOLUTION OF DAILY TORPOR AND HIBERNATION IN BIRDS AND MAMMALS: IMPORTANCE OF BODY SIZE , 1998, Clinical and experimental pharmacology & physiology.
[10] Harry J. Flint,et al. Diversity, metabolism and microbial ecology of butyrate-producing bacteria from the human large intestine. , 2009, FEMS microbiology letters.
[11] Brian M. Barnes,et al. Phenological variation in annual timing of hibernation and breeding in nearby populations of Arctic ground squirrels , 2011, Proceedings of the Royal Society B: Biological Sciences.
[12] C. P. Lyman. Hibernation and Torpor in Mammals and Birds , 1983 .
[13] Paramvir S. Dehal,et al. FastTree 2 – Approximately Maximum-Likelihood Trees for Large Alignments , 2010, PloS one.
[14] J. Tiedje,et al. Naïve Bayesian Classifier for Rapid Assignment of rRNA Sequences into the New Bacterial Taxonomy , 2007, Applied and Environmental Microbiology.
[15] Min Zhang,et al. Individuality in gut microbiota composition is a complex polygenic trait shaped by multiple environmental and host genetic factors , 2010, Proceedings of the National Academy of Sciences.
[16] Robert C. Edgar,et al. BIOINFORMATICS APPLICATIONS NOTE , 2001 .
[17] C. Woolverton,et al. Prescott, Harley and Klein's Microbiology , 2008 .
[18] E. Barnes,et al. The effect of hibernation on the caecal flora of the thirteen-lined ground squirrel (Citellus tridecemlineatus). , 1970, The Journal of applied bacteriology.
[19] H. Flint,et al. Understanding the effects of diet on bacterial metabolism in the large intestine , 2007, Journal of applied microbiology.
[20] R. Long,et al. Simultaneous Collection of Body Temperature and Activity Data in Burrowing Mammals: a New Technique , 2007 .
[21] B. Barnes. Freeze avoidance in a mammal: body temperatures below 0 degree C in an Arctic hibernator. , 1989, Science.
[22] S. E. West,et al. Fermentation of mucin and plant polysaccharides by strains of Bacteroides from the human colon , 1977, Applied and environmental microbiology.
[23] Pierre-Gilles Henry,et al. Adaptive mechanisms regulate preferred utilization of ketones in the heart and brain of a hibernating mammal during arousal from torpor. , 2009, American journal of physiology. Regulatory, integrative and comparative physiology.
[24] A. Bernalier-Donadille. [Fermentative metabolism by the human gut microbiota]. , 2010, Gastroenterologie clinique et biologique.
[25] W. Schlesinger,et al. Temperature effects on the diversity of soil heterotrophs and the δ13C of soil-respired CO2. , 2000 .
[26] G. Macfarlane,et al. Regulation of short-chain fatty acid production , 2003, Proceedings of the Nutrition Society.
[27] C. Buck,et al. Effects of ambient temperature on metabolic rate, respiratory quotient, and torpor in an arctic hibernator. , 2000, American journal of physiology. Regulatory, integrative and comparative physiology.
[28] K. Pregitzer,et al. Compositional and functional shifts in microbial communities due to soil warming , 1997 .
[29] N. Sills,et al. Maintenance of intestinal nutrient transport during hibernation. , 1992, The American journal of physiology.
[30] F. Bäckhed,et al. Host-Bacterial Mutualism in the Human Intestine , 2005, Science.
[31] C. Buck,et al. Phenology of hibernation and reproduction in ground squirrels: integration of environmental cues with endogenous programming , 2014 .
[32] B Crabtree,et al. The role of high rates of glycolysis and glutamine utilization in rapidly dividing cells , 1985, Bioscience reports.
[33] H. Flint,et al. Microbial degradation of complex carbohydrates in the gut , 2012, Gut microbes.
[34] R. Knight,et al. UniFrac: a New Phylogenetic Method for Comparing Microbial Communities , 2005, Applied and Environmental Microbiology.
[35] A. Andrewsa,et al. Temperature e ects on the diversity of soil heterotrophs and the d 13 C of soil-respired CO 2 , 2022 .
[36] R. Knight,et al. Rapid denoising of pyrosequencing amplicon data: exploiting the rank-abundance distribution , 2010, Nature Methods.
[37] Brian M. Barnes,et al. Annual Cycle of Body Composition and Hibernation in Free-Living Arctic Ground Squirrels , 1999 .
[38] William A. Walters,et al. QIIME allows analysis of high-throughput community sequencing data , 2010, Nature Methods.
[39] Lynn K. Carmichael,et al. A Genomic View of the Human-Bacteroides thetaiotaomicron Symbiosis , 2003, Science.
[40] Rob Knight,et al. Regulation of myocardial ketone body metabolism by the gut microbiota during nutrient deprivation , 2009, Proceedings of the National Academy of Sciences.
[41] Rob Knight,et al. PyNAST: a flexible tool for aligning sequences to a template alignment , 2009, Bioinform..
[42] Naoki Takemura,et al. Response of Gut Microbiota to Fasting and Hibernation in Syrian Hamsters , 2009, Applied and Environmental Microbiology.
[43] Benjamin P. Westover,et al. Glycan Foraging in Vivo by an Intestine-Adapted Bacterial Symbiont , 2005, Science.
[44] M. L. Riedesel,et al. Protein metabolism and urea recycling in rodent hibernators. , 1980, Federation proceedings.
[45] T. Ruf,et al. Seasonal changes in morphology and function of the gastrointestinal tract of free-living alpine marmots (Marmota marmota) , 2002, Journal of Comparative Physiology B.
[46] G. Macfarlane,et al. Occurrence of sulphate-reducing bacteria in human faeces and the relationship of dissimilatory sulphate reduction to methanogenesis in the large gut. , 1988, The Journal of applied bacteriology.
[47] R. Knight,et al. Postprandial remodeling of the gut microbiota in Burmese pythons , 2010, The ISME Journal.
[48] C. Loren Buck,et al. Estimating lean mass over a wide range of body composition: a calibration of deuterium dilution in the arctic ground squirrel. , 2011, Rapid communications in mass spectrometry : RCM.
[49] Eoin L. Brodie,et al. Greengenes, a Chimera-Checked 16S rRNA Gene Database and Workbench Compatible with ARB , 2006, Applied and Environmental Microbiology.
[50] H. Flint,et al. The influence of diet on the gut microbiota. , 2013, Pharmacological research.
[51] W. Galster,et al. Gluconeogenesis in arctic ground squirrels between periods of hibernation. , 1975, The American journal of physiology.
[52] H. Stephan,et al. Freeze Avoidance in a Mammal: Body Temperatures Below 00C in an Arctic Hibernator , 1989 .
[53] J. Gordon,et al. Mucosal glycan foraging enhances fitness and transmission of a saccharolytic human gut bacterial symbiont. , 2008, Cell host & microbe.
[54] F. Geiser,et al. Metabolic rate and body temperature reduction during hibernation and daily torpor. , 2004, Annual review of physiology.
[55] F. Geiser,et al. Reduction of metabolism during hibernation and daily torpor in mammals and birds: temperature effect or physiological inhibition? , 2004, Journal of Comparative Physiology B.
[56] E. N. Bergman. Energy contributions of volatile fatty acids from the gastrointestinal tract in various species. , 1990, Physiological reviews.
[57] P. Bork,et al. Enterotypes of the human gut microbiome , 2011, Nature.
[58] L. Comstock. Importance of glycans to the host-bacteroides mutualism in the mammalian intestine. , 2009, Cell Host and Microbe.
[59] B L Krilowicz,et al. Ketone body metabolism in a ground squirrel during hibernation and fasting. , 1985, The American journal of physiology.
[60] Seppo Salminen,et al. The Mucin Degrader Akkermansia muciniphila Is an Abundant Resident of the Human Intestinal Tract , 2007, Applied and Environmental Microbiology.