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October 25, 2018Circulation Research187 citationsOpen Access

Microbial Transplantation With Human Gut Commensals Containing CutC Is Sufficient to Transmit Enhanced Platelet Reactivity and Thrombosis Potential

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SSSarah M. SkyeWZWeifei ZhuKRKymberleigh A. Romano

Key Result

Microbial cutC-dependent TMA/TMAO production by human gut commensals is sufficient to transmit heightened platelet reactivity and thrombosis potential in a host.

Structured PICO

Does colonization with gut microbes expressing the cutC gene increase platelet reactivity and thrombosis potential in germ-free mice?

P
Population
Germ-free (gnotobiotic) mice
I
Intervention
Colonization with high TMA-producing stable human fecal polymicrobial communities or a defined CutC-deficient background microbial community coupled with a CutC-expressing human commensal
C
Comparator
Colonization with a defined CutC-deficient background microbial community coupled with a human commensal with genetic disruption of its cutC gene (Clostridium sporogenes Δ cutC)
O
Outcome
In vivo thrombosis potential and platelet reactivitysurrogate

The microbial choline TMA-lyase pathway, specifically the cutC gene, directly enhances platelet reactivity and thrombosis potential, identifying it as a potential therapeutic target for atherothrombotic heart disease.

Abstract

RATIONALE: Gut microbes influence cardiovascular disease and thrombosis risks through the production of trimethylamine N-oxide (TMAO). Microbiota-dependent generation of trimethylamine (TMA)-the precursor to TMAO-is rate limiting in the metaorganismal TMAO pathway in most humans and is catalyzed by several distinct microbial choline TMA-lyases, including the proteins encoded by the cutC/D (choline utilization C/D) genes in multiple human commensals. OBJECTIVE: Direct demonstration that the gut microbial cutC gene is sufficient to transmit enhanced platelet reactivity and thrombosis potential in a host via TMA/TMAO generation has not yet been reported. METHODS AND RESULTS: Herein, we use gnotobiotic mice and a series of microbial colonization studies to show that microbial cutC-dependent TMA/TMAO production is sufficient to transmit heightened platelet reactivity and thrombosis potential in a host. Specifically, we examine in vivo thrombosis potential employing germ-free mice colonized with either high TMA-producing stable human fecal polymcrobial communities or a defined CutC-deficient background microbial community coupled with a CutC-expressing human commensal±genetic disruption of its cutC gene (ie, Clostridium sporogenes Δ cutC). CONCLUSIONS: Collectively, these studies point to the microbial choline TMA-lyase pathway as a rational molecular target for the treatment of atherothrombotic heart disease.

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Cite This Study

Skye et al. (2018) studied Thrombosis potential. Microbial colonization with CutC-expressing human commensal vs. CutC-deficient background microbial community or Clostridium sporogenes Δ cutC was evaluated on Platelet reactivity and thrombosis potential. Microbial cutC-dependent TMA/TMAO production by human gut commensals is sufficient to transmit heightened platelet reactivity and thrombosis potential in a host.

synapsesocial.com/papers/6a16ca29b13aec50ea6b8308https://doi.org/10.1161/circresaha.118.313142
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