State Key Laboratory of Hybrid Rice, Hubei Hongshan Laboratory, College of Life Sciences, Wuhan University, Wuhan 430072, China.
Department of Plant & Microbial Biology, University of California, 111 Koshland Hall, Berkeley, CA 94720, USA.
Plant Physiol. 2023 Aug 3;192(4):2803-2821. doi: 10.1093/plphys/kiad268.
Plants have evolved multiple mechanisms to cope with diverse types of light stress, particularly the regulation of the electron transport chain (ETC). Under high light (HL) conditions, the balance of electron flux in the ETC is disturbed, which leads to the overaccumulation of reactive oxygen species (ROS) and results in photodamage and photoinhibition. The cytochrome (Cyt) b6/f complex, which coordinates electron transfer between photosystems I and II (PSI and PSII), plays an essential role in regulating the ETC and initiating photoprotection. However, how the Cyt b6/f complex is maintained under HL conditions remains unclear. Here, we report that the activity of the Cyt b6/f complex is sustained by thylakoid-localized cyclophilin 37 (CYP37) in Arabidopsis (Arabidopsis thaliana). Compared with wild-type plants, cyp37 mutants displayed an imbalance in electron transport from Cyt b6/f to PSI under HL stress, which led to increased ROS accumulation, decreased anthocyanin biosynthesis, and increased chlorophyll degradation. Surprisingly, CYP37's role in regulating ETC balance was independent of photosynthesis control, which was indicated by a higher Y (ND), an indicator of P700 oxidation in PSI. Furthermore, the interaction between CYP37 and photosynthetic electron transfer A (PetA), a subunit of the Cyt b6/f complex, suggests that the central function of CYP37 is to maintain Cyt b6/f complex activity rather than to serve as an assembly factor. Our study provides insights into how plants balance electron flow between PSII and PSI via Cyt b6/f complex under HL.
植物已经进化出多种机制来应对不同类型的光胁迫,特别是电子传递链(ETC)的调节。在高光(HL)条件下,ETC 中的电子流平衡被打乱,导致活性氧(ROS)的过度积累,从而导致光损伤和光抑制。细胞色素(Cyt)b6/f 复合物在协调光系统 I 和 II(PSI 和 PSII)之间的电子传递中起着至关重要的作用,它在调节 ETC 和启动光保护方面起着关键作用。然而,Cyt b6/f 复合物在 HL 条件下如何被维持尚不清楚。在这里,我们报告说,类囊体定位的细胞色素 P450 37(CYP37)在拟南芥(Arabidopsis thaliana)中维持 Cyt b6/f 复合物的活性。与野生型植物相比,cyp37 突变体在 HL 胁迫下从 Cyt b6/f 到 PSI 的电子传递不平衡,导致 ROS 积累增加、花青素生物合成减少和叶绿素降解增加。令人惊讶的是,CYP37 调节 ETC 平衡的作用与光合作用控制无关,PSI 中 P700 氧化的指标 Y(ND)更高表明了这一点。此外,CYP37 与光合电子传递 A(PetA)的相互作用表明,CYP37 的核心功能是维持 Cyt b6/f 复合物的活性,而不是作为组装因子。我们的研究提供了关于植物如何在 HL 下通过 Cyt b6/f 复合物平衡 PSII 和 PSI 之间的电子流的深入了解。