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March 6, 2026Cell Metabolism7 citationsOpen Access

Targeting microbiota-generated acetaldehyde to prevent progression of metabolic dysfunction-associated steatotic liver disease

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YTYajun TangJKJunliang KuangXXXixi Xia

Key Points

  • The aim is to explore how microbiota-generated acetaldehyde contributes to liver disease progression and to identify therapeutic strategies.
  • Analyzed data from over 210,000 participants in the UK Biobank for dietary patterns and liver-related health outcomes.
  • Investigated the impact of dietary fructose on liver disease progression and microbiota shifts.
  • Engineered a probiotic strain, Ligilactobacillus salivarius HAM, to enhance acetaldehyde degradation in preclinical liver disease models.
  • Found a dose-dependent correlation between sugar intake and liver-related mortality.
  • Identified microbial shifts favoring acetaldehyde fermentation pathways in MASH patients.
  • Probiotic treatment with Ligilactobacillus salivarius HAM effectively stopped fibrosis progression in preclinical models.

Abstract

The progression from metabolic dysfunction-associated steatotic liver disease (MASLD) to steatohepatitis (MASH) entails rapid, often irreversible hepatic injury, underscoring the urgent need for innovative therapeutic strategies. Here, we demonstrate that excessive dietary sugar intake, particularly fructose, exacerbates liver disease progression through microbiota-mediated amplification of endogenous acetaldehyde production. Analysis of over 210,000 participants from the UK Biobank revealed a dose-dependent correlation between sugar consumption and liver-related mortality, accompanied by a microbial shift favoring acetaldehyde/ethanol fermentation pathways in MASH patients. Mechanistically, gut-derived acetaldehyde activates hepatic stellate cells via upregulation of matrix metalloproteinase-7 (MMP7), driving fibrogenesis. To mitigate this, we engineered Ligilactobacillus salivarius HAM, a probiotic strain with enhanced acetaldehyde-degrading capacity, which effectively halted fibrosis progression in preclinical models of diet-induced liver disease. These findings highlight microbiota-targeted modulation of aldehyde metabolism as a promising therapeutic avenue to intercept the transition from MASLD to MASH.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69aa6eb1531e4c4a9ff58e45https://doi.org/10.1016/j.cmet.2026.01.021
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