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April 30, 2026Marine Drugs0 citationsOpen Access

Enhanced Synechococcus Growth Under Extended High-Light and High-Temperature Stress by the F1-α-C252Y Mutation in ATP Synthase: ATP Generation and Metabolic Network Remodeling

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LZLinan ZhouWLWenjing LouWLWenjing Lou

Key Points

  • This research explores how the F1-α-C252Y mutation in ATP synthase affects Synechococcus elongatus PCC 7942 under high-light-high-temperature stress.
  • Analyzed cellular ATP synthesis activity
  • Investigated transcriptomic changes in Sye7942
  • Measured growth and glycogen production under HLHT conditions
  • Mutation led to increased gene expression involved in photosynthesis and carbon fixation
  • Enhanced intracellular ATP synthesis observed
  • Sye7942 showed accelerated growth and increased glycogen production under stress conditions

Abstract

Photosynthesis, the main energy source for life on Earth, confronts escalating challenges of high-light–high-temperature stress (HLHT). Our previous study identified a mutation in ATP synthase, F1-α-C252Y, that significantly enhances the HLHT tolerance of Synechococcus elongatus PCC 7942 (Sye7942), although the underlying mechanism remains obscure. In this study, we found that this mutation led to elevated levels of the b subunit of Fo, F1 subunits, and the ATP synthase within cells, without affecting ATP synthetic activity, indicating improved intracellular ATP synthesis activity. Additionally, the mutation altered the transcriptome of Sye7942, impacting the expression of genes involved in crucial processes, such as the electron transport chain, carbon fixation, and regulatory factors, which are crucial for cyanobacteria’s adaptation to stresses. Correspondingly, the mutant exhibited enhanced photosynthesis, accelerated growth, and increased glycogen under HLHT conditions, showing improved adaptation. The higher intracellular ATP synthesis activity, along with enhanced photosynthetic activity, suggests increased ATP production in the mutant under HLHT. Enhancing ATP production and remodeling the cellular transcriptome appear to be key strategies employed by the C252Y mutation for Sye7942 acclimating to HLHT. These findings provide valuable insights for enhancing photosynthetic efficiency and stress resilience in cyanobacteria and other photosynthetic organisms facing HLHT challenges.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69f2a4b78c0f03fd67763c49https://doi.org/10.3390/md24050152
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