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April 10, 2026Microorganisms0 citationsOpen Access

Transcriptional Analysis of Cell Division-Related Genes in Weizmannia coagulans BC99 Under Low pH Conditions

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YZYanqi ZhangPLPengyan LiLWLijuan Wang

Key Points

  • This research aims to understand how Weizmannia coagulans regulates cell division under low pH conditions.
  • Established growth inhibition threshold at pH 4.20 for Weizmannia coagulans BC99.
  • Conducted transcriptomic analysis to assess gene expression changes under acid stress.
  • Analyzed core metabolic network reorganization in response to acid stress.
  • Identified downregulation of division genes (FtsZ/Q) under acid stress.
  • Demonstrated suppression of ATP synthase and reduced peptidoglycan transport.
  • Highlighted enhanced membrane rigidification and magnesium homeostasis as adaptive responses.

Abstract

Environmental pH plays a critical role in microbial fermentation processes. Weizmannia coagulans attracts particular attention for exceptional acid tolerance and lactic acid productivity. Yet acidic stress impacts on its cell division regulation remain unclear. Here, a critical pH value (pH 4.20) for growth inhibition of the Gram-positive bacterium Weizmannia coagulans strain BC99 was first established. Transcriptomic analysis of metabolic pathways was then performed. The multi-layered regulatory network underlying acid stress-induced cell division was elucidated. Integrated transcriptomic and physiological analyses reveal that acid stress triggers multigene expression reprogramming. This drives core metabolic network reorganization, coordinately regulating division processes. RNA-seq analysis demonstrated acid stress triggered differential expression of division genes (FtsZ/Q downregulation), ATP synthase suppression, and peptidoglycan transport reduction, while enhancing membrane rigidification (Cfa) and magnesium homeostasis (CorA). The PhoPR dual-component system emerged as a central regulator, inhibiting septal assembly via RipA hydrolase and RpsU ribosomal suppression while rerouting carbon flux to glycolysis, elucidating bacterial acid adaptation mechanisms. Collectively, these adaptive changes prioritize cell survival over active proliferation under acidic conditions. This study provides molecular insights into how W. coagulans preserves viability under acid stress, offering a theoretical basis for optimizing its performance in probiotic applications.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69d896406c1944d70ce078a9https://doi.org/10.3390/microorganisms14040839
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