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March 3, 2026Journal of Experimental Botany0 citations

Tropical forest trees with higher thermal optima of photosynthesis exhibit lower PSII heat stability

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RTRakesh TiwariBHB. A. HegdePBPeddiraju Bandaru

Key Points

  • Lower thermal optima for photosynthesis correlate with higher PSII heat stability, highlighting a potential trade-off.
  • Specifically, the inverse relationship shows that higher Topt is linked with lower PSII thermal tolerance.
  • Analysis conducted across various topographies and temperature gradients in India's Central Western Ghats forest.
  • These findings imply a challenge for species to adapt to rising temperatures while maintaining resilience during extreme heat.

Abstract

Tropical tree species vary in photosynthetic temperature sensitivity, with species from warmer habitats or those acclimated to higher temperatures typically displaying higher thermal optima for net CO2 assimilation (Topt, Anet). Sustaining photosynthesis at elevated temperatures likely requires increased allocation of resources (ATP, NADPH, nitrogen, carbon) toward heat stress management, particularly PSII repair. However, under extreme heat, repair demands may exceed available resources, potentially limiting acclimation. It is unclear whether higher Topt, Anet reflects inherently greater PSII heat stability. We studied 11 tropical tree species across a topographic (hilltop, slope, valley) and thermal gradient (summer peaks: 46.1, 40.1, 31.8 °C, respectively) in India's Central Western Ghats forest, measuring photosynthetic temperature responses and PSII thermal tolerance (T5, the temperature causing 5% PSII efficiency decline) at peak summer. We found an inverse correlation between T5 and Topt, Anet (p = 0.005): lower Topt, Anet was associated with higher PSII heat stability (higher T5), and vice versa. This could suggest a trade-off between investing resources to achieve higher Topt, Anet and maintaining PSII heat stability. Species may struggle to simultaneously acclimate to elevated temperatures and remain resilient to extreme heat events. These findings have implications for understanding tropical forest tree responses to climate warming.

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Cite This Study

Tiwari et al. (2026) studied this question.

synapsesocial.com/papers/69a75be8c6e9836116a24174https://doi.org/10.1093/jxb/erag045
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