Department of Solid-State NMR, Leiden Institute of Chemistry, Gorlaeus Laboratory, Leiden University, Einsteinweg 55, 2300 RA Leiden, The Netherlands.
J Biol Chem. 2013 Jul 5;288(27):19796-804. doi: 10.1074/jbc.M113.456111. Epub 2013 Apr 29.
Light-harvesting antennae of the LHC family form transmembrane three-helix bundles of which two helices are interlocked by conserved arginine-glutamate (Arg-Glu) ion pairs that form ligation sites for chlorophylls. The antenna proteins of photosystem II have an intriguing dual function. In excess light, they can switch their conformation from a light-harvesting into a photoprotective state, in which the excess and harmful excitation energies are safely dissipated as heat. Here we applied magic angle spinning NMR and selective Arg isotope enrichment as a noninvasive method to analyze the Arg structures of the major light-harvesting complex II (LHCII). The conformations of the Arg residues that interlock helix A and B appear to be preserved in the light-harvesting and photoprotective state. Several Arg residues have very downfield-shifted proton NMR responses, indicating that they stabilize the complex by strong hydrogen bonds. For the Arg Cα chemical shifts, differences are observed between LHCII in the active, light-harvesting and in the photoprotective, quenched state. These differences are attributed to a conformational change of the Arg residue in the stromal loop region. We conclude that the interlocked helices of LHCII form a rigid core. Consequently, the LHCII conformational switch does not involve changes in A/B helix tilting but likely involves rearrangements of the loops and helical segments close to the stromal and lumenal ends.
LHC 家族的光捕获天线形成跨膜三螺旋束,其中两个螺旋由保守的精氨酸-谷氨酸(Arg-Glu)离子对锁定,这些离子对形成叶绿素的配位位点。光系统 II 的天线蛋白具有引人注目的双重功能。在过量的光下,它们可以将构象从光捕获状态切换到光保护状态,在这种状态下,多余的和有害的激发能量可以安全地耗散为热量。在这里,我们应用魔角旋转 NMR 和选择性 Arg 同位素富集作为一种非侵入性方法来分析主要光捕获复合物 II(LHCII)的 Arg 结构。锁定螺旋 A 和 B 的 Arg 残基的构象似乎在光捕获和光保护状态下都得到了保留。几个 Arg 残基的质子 NMR 响应非常向位移,表明它们通过强氢键稳定了复合物。对于 Arg Cα化学位移,在活跃的、光捕获的和光保护的、猝灭的 LHCII 之间观察到差异。这些差异归因于基质环区域中 Arg 残基的构象变化。我们得出结论,LHCII 的锁定螺旋形成刚性核心。因此,LHCII 的构象转换不涉及 A/B 螺旋倾斜的变化,而可能涉及基质和腔末端附近的环和螺旋段的重新排列。