Kaňa R, Šedivá B, Prášil O
Centre Algatech, Institute of Microbiology of the Czech Academy of Sciences, Opatovický mlýn, 379 81 Třeboň, Czech Republic.
Faculty of Science, University of South Bohemia in České Budějovice, Branišovská 31a, 370 05 České Budějovice, Czech Republic.
Photosynthetica. 2023 Dec 18;61(4):483-491. doi: 10.32615/ps.2023.043. eCollection 2023.
The investigation of spatial heterogeneity within the thylakoid membrane (TM) proteins has gained increasing attention in photosynthetic research. The recent advances in live-cell imaging have allowed the identification of heterogeneous organisation of photosystems in small cyanobacterial cells. These sub-micrometre TM regions, termed microdomains in cyanobacteria, exhibit functional similarities with granal (Photosystem II dominant) and stromal (Photosystem I dominant) regions observed in TM of higher plants. This study delves into microdomain heterogeneity using super-resolution Airyscan-based microscopy enhancing resolution to approximately ~125 nm in x-y dimension. The new data reveal membrane areas rich in Photosystem I within the inner TM rings. Moreover, we identified analogous dynamics in the mobility of Photosystem II and phycobilisomes; countering earlier models that postulated differing mobility of these complexes. These novel findings thus hold significance for our understanding of photosynthesis regulation, particularly during state transitions.
类囊体膜(TM)蛋白空间异质性的研究在光合研究中受到越来越多的关注。活细胞成像技术的最新进展使得在小型蓝藻细胞中识别光合系统的异质组织成为可能。这些亚微米级的TM区域,在蓝藻中被称为微区,与高等植物TM中观察到的基粒(以光系统II为主)和基质(以光系统I为主)区域具有功能相似性。本研究使用基于超分辨率Airyscan的显微镜深入研究微区异质性,将x-y维度的分辨率提高到约125nm。新数据揭示了内TM环内富含光系统I的膜区域。此外,我们还确定了光系统II和藻胆体在移动性方面的类似动态;这与早期假设这些复合物移动性不同的模型相反。因此,这些新发现对于我们理解光合作用调控,特别是在状态转换过程中的调控具有重要意义。