Na+-driven pH regulation by Na+/H+ antiporters promotes photosynthetic efficiency in cyanobacteria.

IF 6.5 1区 生物学 Q1 PLANT SCIENCES Plant Physiology Pub Date : 2024-10-24 DOI:10.1093/plphys/kiae562
Masaru Tsujii,Ayumu Kobayashi,Ayaka Kano,Kota Kera,Tomoko Takagi,Noriko Nagata,Seiji Kojima,Kouki Hikosaka,Riichi Oguchi,Kintake Sonoike,Chihiro Azai,Tomomi Inagaki,Yasuhiro Ishimaru,Nobuyuki Uozumi
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Abstract

Photosynthetic organisms have developed mechanisms to regulate light reactions in response to varying light conditions. Photosynthetic electron transport leads to the formation of a ΔpH across the thylakoid membrane, which is crucial for regulating electron transport. However, other pH modulators remain to be identified, particularly in cyanobacteria. In this study, we evaluated the potential involvement of six Na+/H+ antiporters (NhaS1-NhaS6) in control of pH in the cyanobacterium Synechocystis sp. PCC 6803. Synechocystis showed a strong requirement for Na+ at high light intensities, with ΔnhaS1 and ΔnhaS2 strains unable to grow under high light conditions. We analyzed Na+ efflux-driven H+-uptake activities of NhaS1-NhaS6 in inverted membranes of Escherichia coli. Biological fractionation and immunoelectron microscopy revealed that NhaS1 localizes to both the plasma and thylakoid membranes while NhaS2 localizes to the plasma membrane. Measurement of photosynthesis activity indicated that NhaS2 promotes ATP production and electron transport from PQ to P700. Measurements of pH outside of the cells and in the cytoplasm suggested that both NhaS1 and NhaS2 are involved in plasma membrane-mediated light-dependent H+ uptake and cytoplasmic acidification. NhaS1 and NhaS2 were also found to prevent photoinhibition under high light treatment. These results indicate that H+ transport mediated by NhaS1 and NhaS2 plays a role in regulating intracellular pH and maintaining photosynthetic electron transport.
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通过 Na+/H+ 反载体调节 Na+ 驱动的 pH 值可提高蓝藻的光合效率。
光合生物已经发展出一套机制来调节光反应,以应对不同的光照条件。光合电子传递导致在类木质膜上形成ΔpH,这对调节电子传递至关重要。然而,其他 pH 调节因子仍有待确定,尤其是在蓝藻中。在本研究中,我们评估了六种 Na+/H+ 反转运体(NhaS1-NhaS6)在蓝藻 Synechocystis sp.Synechocystis 在高光照强度下对 Na+ 有强烈需求,ΔnhaS1 和 ΔnhaS2 菌株无法在高光照条件下生长。我们分析了大肠杆菌倒膜中 NhaS1-NhaS6 的 Na+ 外流驱动的 H+ 摄取活性。生物分馏和免疫电镜检查发现,NhaS1定位于质膜和类囊体膜,而NhaS2定位于质膜。对光合作用活性的测定表明,NhaS2 促进了 ATP 的产生以及从 PQ 到 P700 的电子传递。对细胞外和细胞质中 pH 值的测量表明,NhaS1 和 NhaS2 都参与了质膜介导的光依赖性 H+吸收和细胞质酸化。研究还发现,NhaS1 和 NhaS2 还能防止强光处理下的光抑制。这些结果表明,NhaS1 和 NhaS2 介导的 H+ 转运在调节细胞内 pH 值和维持光合电子传递方面发挥作用。
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来源期刊
Plant Physiology
Plant Physiology 生物-植物科学
CiteScore
12.20
自引率
5.40%
发文量
535
审稿时长
2.3 months
期刊介绍: Plant Physiology® is a distinguished and highly respected journal with a rich history dating back to its establishment in 1926. It stands as a leading international publication in the field of plant biology, covering a comprehensive range of topics from the molecular and structural aspects of plant life to systems biology and ecophysiology. Recognized as the most highly cited journal in plant sciences, Plant Physiology® is a testament to its commitment to excellence and the dissemination of groundbreaking research. As the official publication of the American Society of Plant Biologists, Plant Physiology® upholds rigorous peer-review standards, ensuring that the scientific community receives the highest quality research. The journal releases 12 issues annually, providing a steady stream of new findings and insights to its readership.
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