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1.
Cell ; 165(1): 111-124, 2016 Mar 24.
Article in English | MEDLINE | ID: mdl-26972052

ABSTRACT

Normal platelet function is critical to blood hemostasis and maintenance of a closed circulatory system. Heightened platelet reactivity, however, is associated with cardiometabolic diseases and enhanced potential for thrombotic events. We now show gut microbes, through generation of trimethylamine N-oxide (TMAO), directly contribute to platelet hyperreactivity and enhanced thrombosis potential. Plasma TMAO levels in subjects (n > 4,000) independently predicted incident (3 years) thrombosis (heart attack, stroke) risk. Direct exposure of platelets to TMAO enhanced sub-maximal stimulus-dependent platelet activation from multiple agonists through augmented Ca(2+) release from intracellular stores. Animal model studies employing dietary choline or TMAO, germ-free mice, and microbial transplantation collectively confirm a role for gut microbiota and TMAO in modulating platelet hyperresponsiveness and thrombosis potential and identify microbial taxa associated with plasma TMAO and thrombosis potential. Collectively, the present results reveal a previously unrecognized mechanistic link between specific dietary nutrients, gut microbes, platelet function, and thrombosis risk.


Subject(s)
Blood Platelets/metabolism , Gastrointestinal Microbiome , Methylamines/metabolism , Thrombosis/metabolism , Animals , Calcium/metabolism , Carotid Artery Injuries/pathology , Cecum/microbiology , Chlorides , Choline/metabolism , Diet , Female , Ferric Compounds , Germ-Free Life , Humans , Methylamines/blood , Mice , Mice, Inbred C57BL , Thrombosis/pathology
3.
PLoS Genet ; 11(12): e1005711, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26694027

ABSTRACT

Common forms of atherosclerosis involve multiple genetic and environmental factors. While human genome-wide association studies have identified numerous loci contributing to coronary artery disease and its risk factors, these studies are unable to control environmental factors or examine detailed molecular traits in relevant tissues. We now report a study of natural variations contributing to atherosclerosis and related traits in over 100 inbred strains of mice from the Hybrid Mouse Diversity Panel (HMDP). The mice were made hyperlipidemic by transgenic expression of human apolipoprotein E-Leiden (APOE-Leiden) and human cholesteryl ester transfer protein (CETP). The mice were examined for lesion size and morphology as well as plasma lipid, insulin and glucose levels, and blood cell profiles. A subset of mice was studied for plasma levels of metabolites and cytokines. We also measured global transcript levels in aorta and liver. Finally, the uptake of acetylated LDL by macrophages from HMDP mice was quantitatively examined. Loci contributing to the traits were mapped using association analysis, and relationships among traits were examined using correlation and statistical modeling. A number of conclusions emerged. First, relationships among atherosclerosis and the risk factors in mice resemble those found in humans. Second, a number of trait-loci were identified, including some overlapping with previous human and mouse studies. Third, gene expression data enabled enrichment analysis of pathways contributing to atherosclerosis and prioritization of candidate genes at associated loci in both mice and humans. Fourth, the data provided a number of mechanistic inferences; for example, we detected no association between macrophage uptake of acetylated LDL and atherosclerosis. Fifth, broad sense heritability for atherosclerosis was much larger than narrow sense heritability, indicating an important role for gene-by-gene interactions. Sixth, stepwise linear regression showed that the combined variations in plasma metabolites, including LDL/VLDL-cholesterol, trimethylamine N-oxide (TMAO), arginine, glucose and insulin, account for approximately 30 to 40% of the variation in atherosclerotic lesion area. Overall, our data provide a rich resource for studies of complex interactions underlying atherosclerosis.


Subject(s)
Atherosclerosis/genetics , Cholesterol Ester Transfer Proteins/genetics , Inbreeding , Quantitative Trait Loci , Animals , Aorta/metabolism , Aorta/pathology , Apolipoproteins E/genetics , Apolipoproteins E/metabolism , Atherosclerosis/pathology , Cholesterol Ester Transfer Proteins/metabolism , Cholesterol, LDL/blood , Humans , Insulin/blood , Macrophages/metabolism , Methylamines/blood , Mice , Mice, Inbred C57BL , Transcriptome
4.
J Biol Chem ; 290(9): 5647-60, 2015 Feb 27.
Article in English | MEDLINE | ID: mdl-25550161

ABSTRACT

Recent studies indicate both clinical and mechanistic links between atherosclerotic heart disease and intestinal microbial metabolism of certain dietary nutrients producing trimethylamine N-oxide (TMAO). Here we test the hypothesis that gut microbial transplantation can transmit choline diet-induced TMAO production and atherosclerosis susceptibility. First, a strong association was noted between atherosclerotic plaque and plasma TMAO levels in a mouse diversity panel (n = 22 strains, r = 0.38; p = 0.0001). An atherosclerosis-prone and high TMAO-producing strain, C57BL/6J, and an atherosclerosis-resistant and low TMAO-producing strain, NZW/LacJ, were selected as donors for cecal microbial transplantation into apolipoprotein e null mice in which resident intestinal microbes were first suppressed with antibiotics. Trimethylamine (TMA) and TMAO levels were initially higher in recipients on choline diet that received cecal microbes from C57BL/6J inbred mice; however, durability of choline diet-dependent differences in TMA/TMAO levels was not maintained to the end of the study. Mice receiving C57BL/6J cecal microbes demonstrated choline diet-dependent enhancement in atherosclerotic plaque burden as compared with recipients of NZW/LacJ microbes. Microbial DNA analyses in feces and cecum revealed transplantation of donor microbial community features into recipients with differences in taxa proportions between donor strains that were transmissible to recipients and that tended to show coincident proportions with TMAO levels. Proportions of specific taxa were also identified that correlated with plasma TMAO levels in donors and recipients and with atherosclerotic lesion area in recipients. Atherosclerosis susceptibility may be transmitted via transplantation of gut microbiota. Gut microbes may thus represent a novel therapeutic target for modulating atherosclerosis susceptibility.


Subject(s)
Atherosclerosis/microbiology , Cecum/microbiology , Disease Susceptibility/microbiology , Gastrointestinal Tract/microbiology , Microbiota/physiology , Animals , Aorta/metabolism , Aorta/pathology , Atherosclerosis/blood , Atherosclerosis/etiology , Choline/administration & dosage , Diet/adverse effects , Disease Susceptibility/blood , Disease Susceptibility/complications , Female , Host-Pathogen Interactions , Humans , Male , Methylamines/blood , Methylamines/metabolism , Mice, Inbred AKR , Mice, Inbred BALB C , Mice, Inbred C3H , Mice, Inbred C57BL , Mice, Inbred CBA , Mice, Inbred DBA , Mice, Inbred Strains , Mice, Knockout , Mice, Transgenic , Species Specificity
5.
Cell Metab ; 20(5): 799-812, 2014 Nov 04.
Article in English | MEDLINE | ID: mdl-25440057

ABSTRACT

L-carnitine, a nutrient in red meat, was recently reported to accelerate atherosclerosis via a metaorganismal pathway involving gut microbial trimethylamine (TMA) formation and host hepatic conversion into trimethylamine-N-oxide (TMAO). Herein, we show that following L-carnitine ingestion, γ-butyrobetaine (γBB) is produced as an intermediary metabolite by gut microbes at a site anatomically proximal to and at a rate ∼1,000-fold higher than the formation of TMA. Moreover, we show that γBB is the major gut microbial metabolite formed from dietary L-carnitine in mice, is converted into TMA and TMAO in a gut microbiota-dependent manner (like dietary L-carnitine), and accelerates atherosclerosis. Gut microbial composition and functional metabolic studies reveal that distinct taxa are associated with the production of γBB or TMA/TMAO from dietary L-carnitine. Moreover, despite their close structural similarity, chronic dietary exposure to L-carnitine or γBB promotes development of functionally distinct microbial communities optimized for the metabolism of L-carnitine or γBB, respectively.


Subject(s)
Atherosclerosis/microbiology , Betaine/analogs & derivatives , Carnitine/metabolism , Gastrointestinal Tract/microbiology , Methylamines/metabolism , Animals , Atherosclerosis/metabolism , Betaine/metabolism , Female , Gastrointestinal Tract/metabolism , Mice , Mice, Inbred C57BL , Microbiota
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