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光合膜中的表面电荷动力学及其结构后果。

Surface charge dynamics in photosynthetic membranes and the structural consequences.

机构信息

Institute of Biological Chemistry, Washington State University, PO Box 646340, Pullman, Washington 99164-6340, USA.

Biophysics of Photosynthesis, Department of Physics and Astronomy, Faculty of Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.

出版信息

Nat Plants. 2017 Mar 6;3:17020. doi: 10.1038/nplants.2017.20.

Abstract

The strict stacking of plant photosynthetic membranes into granal structures plays a vital role in energy conversion. The molecular forces that lead to grana stacking, however, are poorly understood. Here we evaluate the interplay between repulsive electrostatic (F) and attractive van der Waals (F) forces in grana stacking. In contrast to previous reports, we find that the physicochemical balance between attractive and repulsive forces fully explains grana stacking. Extending the force balance analysis to lateral interactions within the oxygen-evolving photosystem II (PSII)-light harvesting complex II (LHCII) supercomplex reveals that supercomplex stability is very sensitive to F changes. F is highly dynamic, increasing up to 1.7-fold on addition of negative charges by phosphorylation of grana-hosted proteins. We show that this leads to specific destabilization of the supercomplex, and that changes in F have contrasting effects on vertical stacking and lateral intramembrane organization. This enables discrete biological control of these central structural features.

摘要

植物光合作用膜严格堆叠成粒状结构在能量转换中起着至关重要的作用。然而,导致粒状堆叠的分子力却知之甚少。在这里,我们评估了排斥静电(F)和吸引范德华(F)力在粒状堆叠中的相互作用。与之前的报告不同,我们发现吸引力和排斥力之间的物理化学平衡完全解释了粒状堆叠。将力平衡分析扩展到产氧光合作用系统 II(PSII)-光收集复合物 II(LHCII)超复合体内部的侧向相互作用,揭示了超复合体的稳定性对 F 变化非常敏感。F 非常动态,通过粒状宿主蛋白的磷酸化添加负电荷,F 增加高达 1.7 倍。我们表明,这会导致超复合体的特异性失稳,并且 F 的变化对垂直堆叠和膜内横向组织有相反的影响。这使得对这些中央结构特征进行离散的生物学控制成为可能。

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