β‐Carbonic anhydrases integrate CO 2 and light cues to coordinate photosynthesis in tomato

Summary Optimization of photosynthesis requires precise coordination between electron transport and CO 2 assimilation, but how plants maintain this coordination under suboptimal CO 2 and light conditions remains poorly understood. Here, we identify two tomato ( Solanum lycopersicum ) β‐carbonic anhydrases (βCAs) responsive to deficient CO 2 . Although both are required for biomass accumulation and efficient photosynthesis, the chloroplast βCA1 does not directly participate in carbon assimilation but instead specifically coordinates photosystem performance and leaf internal structure. This role is distinct from the cytosol/plasma‐membrane βCA2 that supports carbon assimilation and overall growth. We demonstrate that βCA1 buffers light‐induced stromal pH changes, thereby optimizing proton motive force ( pmf ) and stabilizing photosystem II performance. The absence of βCA1 increases photosystem sensitivity to high‐light intensities, resulting in increased photoprotective responses and adaptive thylakoid re‐organization when environmental CO 2 becomes limiting relative to irradiance. Our findings establish chloroplast βCA1 as a key integrator of CO 2 and light cues that optimizes photosystem performance through modulation of pmf partitioning and reveal stromal pH regulation as a previously unrecognized mechanism for optimizing photosynthesis under suboptimal CO 2 and light conditions.

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Publication Details

Journal
New Phytologist
Published
2026-09-17
DOI
https://doi.org/10.1111/nph.71578
Primary Topic
Photosynthetic Processes and Mechanisms
Type
article
Field-Weighted Citation Impact
0.00

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article

β‐Carbonic anhydrases integrate CO 2 and light cues to coordinate photosynthesis in tomato

Shujun Shao, Christine H. Foyer, Kai Shi, Xiaopeng Guo et al.
New Phytologist
Photosynthetic Processes and Mechanisms
article

β‐Carbonic anhydrases integrate CO 2 and light cues to coordinate photosynthesis in tomato

Shujun Shao, Christine H. Foyer, Kai Shi, Xiaopeng Guo, Haiming Ying, Yang Liu, Anran Wang, Xiao Liang, Minghan Xu, Jianrong Lv, Chenxin Yue, Wei Yuan (64653), Hongxin Wu
article en

Abstract

Summary Optimization of photosynthesis requires precise coordination between electron transport and CO 2 assimilation, but how plants maintain this coordination under suboptimal CO 2 and light conditions remains poorly understood. Here, we identify two tomato ( Solanum lycopersicum ) β‐carbonic anhydrases (βCAs) responsive to deficient CO 2 . Although both are required for biomass accumulation and efficient photosynthesis, the chloroplast βCA1 does not directly participate in carbon assimilation but instead specifically coordinates photosystem performance and leaf internal structure. This role is distinct from the cytosol/plasma‐membrane βCA2 that supports carbon assimilation and overall growth. We demonstrate that βCA1 buffers light‐induced stromal pH changes, thereby optimizing proton motive force ( pmf ) and stabilizing photosystem II performance. The absence of βCA1 increases photosystem sensitivity to high‐light intensities, resulting in increased photoprotective responses and adaptive thylakoid re‐organization when environmental CO 2 becomes limiting relative to irradiance. Our findings establish chloroplast βCA1 as a key integrator of CO 2 and light cues that optimizes photosystem performance through modulation of pmf partitioning and reveal stromal pH regulation as a previously unrecognized mechanism for optimizing photosynthesis under suboptimal CO 2 and light conditions.

New Phytologist
Zhejiang A & F University (CN), Ministry of Agriculture (ID), ZheJiang Academy of Agricultural Sciences (CN), Chinese Academy of Agricultural Mechanization Sciences (CN), Sanya University (CN), Ministry of Agriculture and Rural Affairs (CN), Inner Mongolia Yili Industrial Group (China) (CN), Zhejiang University (CN), University of Birmingham (GB)
National Natural Science Foundation of China, Higher Education Discipline Innovation Project, National Key Research and Development Program of China
Openalex Percentile: Top 18%
Photosynthetic Processes and Mechanisms
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