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February 2, 2026eLife0 citationsOpen Access

Gut microbe-derived trimethylamine shapes circadian rhythms through the host receptor TAAR5

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KMK. MahenWMWilliam J. MasseyDODanny Orabi

Key Points

  • The research investigates how gut microbe-derived trimethylamine influences circadian rhythms and metabolic health through TAAR5.
  • Examined the effects of trimethylamine on circadian rhythms in mice with and without the TAAR5 receptor.
  • Analyzed gene expression, metabolic hormones, and gut microbiome composition across different mouse models.
  • Compared behaviors of mice lacking TMA production and those lacking TMA oxidation.
  • Mice lacking the TAAR5 receptor showed altered circadian rhythms in gene expression and behaviors.
  • Mice without bacterial TMA production also demonstrated changes in circadian rhythms.
  • Host metabolic homeostasis was affected, implying a link between gut microbes and circadian regulation.

Abstract

Elevated levels of the gut microbe-derived metabolite trimethylamine N -oxide (TMAO) are associated with cardiometabolic disease risk. However, the mechanism(s) linking TMAO production to human disease are incompletely understood. Initiation of the metaorganismal TMAO pathway begins when dietary choline and related metabolites are converted to trimethylamine (TMA) by gut bacteria. Gut microbe-derived TMA can then be further oxidized by host flavin-containing monooxygenases to generate TMAO. Previously, we showed that drugs lowering both TMA and TMAO protect mice against obesity via rewiring of host circadian rhythms (Schugar et al., 2022). Although most mechanistic studies in the literature have focused on the metabolic end product TMAO, here we have instead tested whether the primary metabolite TMA alters host metabolic homeostasis and circadian rhythms via trace amine-associated receptor 5 (TAAR5). Remarkably, mice lacking the host TMA receptor ( Taar5 −/ − ) have altered circadian rhythms in gene expression, metabolic hormones, gut microbiome composition, and diverse behaviors. Also, mice genetically lacking bacterial TMA production or host TMA oxidation have altered circadian rhythms. These results provide new insights into diet–microbe–host interactions relevant to cardiometabolic disease and implicate gut bacterial production of TMA and the host receptor that senses TMA (TAAR5) in the physiologic regulation of circadian rhythms in mice.

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Cite This Study

Mahen et al. (2026) studied this question.

synapsesocial.com/papers/6980fd18c1c9540dea80ed98https://doi.org/10.7554/elife.107037.3
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