The Microbiome and Butyrate Regulate Energy Metabolism and Autophagy in the Mammalian Colon

被引:1393
作者
Donohoe, Dallas R. [1 ]
Garge, Nikhil [3 ]
Zhang, Xinxin [3 ]
Sun, Wei [1 ]
O'Connell, Thomas M. [2 ]
Bunger, Maureen K. [3 ]
Bultman, Scott J. [1 ]
机构
[1] Univ N Carolina, Dept Genet, Chapel Hill, NC 27599 USA
[2] Univ N Carolina, Div Pharmacotherapy & Expt Therapeut, Chapel Hill, NC 27599 USA
[3] Res Triangle Inst, Ctr Biomarkers & Syst Biol, Res Triangle Pk, NC 27709 USA
基金
美国国家卫生研究院;
关键词
CORE GUT MICROBIOME; CHAIN FATTY-ACIDS; HISTONE DEACETYLATION; PROTEIN EXPRESSION; EPITHELIAL-CELLS; BUTYRIVIBRIO; MECHANISMS; BACTERIA; OBESITY; MUCOSA;
D O I
10.1016/j.cmet.2011.02.018
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The microbiome is being characterized by large-scale sequencing efforts, yet it is not known whether it regulates host metabolism in a general versus tissue-specific manner or which bacterial metabolites are important. Here, we demonstrate that microbiota have a strong effect on energy homeostasis in the colon compared to other tissues. This tissue specificity is due to colonocytes utilizing bacterially produced butyrate as their primary energy source. Colonocytes from germfree mice are in an energy-deprived state and exhibit decreased expression of enzymes that catalyze key steps in intermediary metabolism including the TCA cycle. Consequently, there is a marked decrease in NADH/NAD(+), oxidative phosphorylation, and ATP levels, which results in AMPK activation, p27(kip1) phosphorylation, and autophagy. When butyrate is added to germfree colonocytes, it rescues their deficit in mitochondrial respiration and prevents them from undergoing autophagy. The mechanism is due to butyrate acting as an energy source rather than as an HDAC inhibitor.
引用
收藏
页码:517 / 526
页数:10
相关论文
共 46 条
[1]   The gut microbiota as an environmental factor that regulates fat storage [J].
Bäckhed, F ;
Ding, H ;
Wang, T ;
Hooper, LV ;
Koh, GY ;
Nagy, A ;
Semenkovich, CF ;
Gordon, JI .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (44) :15718-15723
[2]   Mechanisms underlying the resistance to diet-induced obesity in germ-free mice [J].
Backhed, Fredrik ;
Manchester, Jill K. ;
Semenkovich, Clay F. ;
Gordon, Jeffrey I. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (03) :979-984
[3]   Phylogenetic relationships of butyrate-producing bacteria from the human gut [J].
Barcenilla, A ;
Pryde, SE ;
Martin, JC ;
Duncan, SH ;
Stewart, CS ;
Henderson, C ;
Flint, HJ .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2000, 66 (04) :1654-1661
[4]   Metabolic profiling, metabolomic and metabonomic procedures for NMR spectroscopy of urine, plasma, serum and tissue extracts [J].
Beckonert, Olaf ;
Keun, Hector C. ;
Ebbels, Timothy M. D. ;
Bundy, Jacob G. ;
Holmes, Elaine ;
Lindon, John C. ;
Nicholson, Jeremy K. .
NATURE PROTOCOLS, 2007, 2 (11) :2692-2703
[5]  
BOFFA LC, 1978, J BIOL CHEM, V253, P3364
[6]   Patterns and Scales in Gastrointestinal Microbial Ecology [J].
Camp, J. Gray ;
Kanther, Michelle ;
Semova, Ivana ;
Rawls, John F. .
GASTROENTEROLOGY, 2009, 136 (06) :1989-2002
[7]   SODIUM BUTYRATE INHIBITS HISTONE DEACETYLATION IN CULTURED-CELLS [J].
CANDIDO, EPM ;
REEVES, R ;
DAVIE, JR .
CELL, 1978, 14 (01) :105-113
[8]   Identifying differences in protein expression levels by spectral counting and feature selection [J].
Carvalho, P. C. ;
Hewel, J. ;
Barbosa, V. C. ;
Yates, J. R., III .
GENETICS AND MOLECULAR RESEARCH, 2008, 7 (02) :342-356
[9]   PatternLab for proteomics: a tool for differential shotgun proteomics [J].
Carvalho, Paulo C. ;
Fischer, Juliana Sg ;
Chen, Emily I. ;
Yates, John R., III ;
Barbosa, Valmir C. .
BMC BIOINFORMATICS, 2008, 9 (1)
[10]   Transcriptome profiling of the small intestinal epithelium in germfree versus conventional piglets [J].
Chowdhury S.R. ;
King D.E. ;
Willing B.P. ;
Band M.R. ;
Beever J.E. ;
Lane A.B. ;
Loor J.J. ;
Marini J.C. ;
Rund L.A. ;
Schook L.B. ;
Van Kessel A.G. ;
Rex H.R. .
BMC Genomics, 8 (1)