类囊体
光系统II
生物物理学
光系统
光系统I
生物
光合作用
细胞色素b6f复合物
叶绿体
基质
绿色植物采光复合体
化学
膜
生物化学
叶绿素荧光
离子键合
电子传输链
光化学
细胞生物学
拟南芥
作者
Jarne Berentsen,Erwin Hogeveen,Emilie Wientjes
标识
DOI:10.1093/plphys/kiag101
摘要
The thylakoid membrane houses the complexes involved in the light-harvesting reactions of photosynthesis. In plants, this membrane is intricately folded into cylindrical grana stacks, connected by stroma lamellae. This architecture allows for the lateral segregation of photosystem II in the grana and photosystem I in the stroma lamellae. The thylakoid ultrastructure is dynamic and can change in response to light and other environmental cues, allowing for regulation of the light-harvesting reactions. Isolated thylakoid membranes in vitro can reversibly destack and restack depending on the concentration of cations such as Mg2+. However, it is currently unknown how this destacking and restacking is possible, given the complex thylakoid architecture. Here, we combine fluorescence spectroscopy with expansion and electron microscopy to investigate the reversible Mg2+-dependent stacking of Arabidopsis thaliana thylakoids in vitro. Our data suggest that the Mg2+ concentration determines the segregation of photosystem I and photosystem II in the thylakoid membrane, regardless of prior status (stacked or destacked). Furthermore, the microscopy results show that thylakoids under fully destacked conditions still retain loose grana-like structures. The loose nature of this thylakoid architecture likely allows the intermixing of the photosystems. Furthermore, our data suggest thylakoids undergo structural reorganisations upon Mg2+-induced restacking. While complete thylakoid destacking and restacking do not occur in vivo, our results offer insights into how subtle changes in ionic conditions could influence energy distribution and protein mobility through local modulation of membrane stacking.
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