Department of Agrobioscience, Graduate School of Agriculture, Kobe University, Nada, Kobe, 657-8501, Japan.
Faculty of Science, Ibaraki University, Mito, 310-8512, Japan.
Photosynth Res. 2018 Mar;135(1-3):23-31. doi: 10.1007/s11120-017-0393-8. Epub 2017 May 10.
The light-harvesting 1 reaction center (LH1-RC) complex in the thermophilic purple sulfur bacterium Thermochromatium (Tch.) tepidum binds Ca ions as cofactors, and Ca-binding is largely involved in its characteristic Q absorption at 915 nm and enhanced thermostability. Ca can be biosynthetically replaced by Sr in growing cultures of Tch. tepidum. However, the resulting Sr-substituted LH1-RC complexes in such cells do not display the absorption maximum and thermostability of those from Ca-grown cells, signaling that inherent structural differences exist in the LH1 complexes between the Ca- and Sr-cultured cells. In this study, we examined the effects of the biosynthetic Sr-substitution and limited proteolysis on the spectral properties and thermostability of the Tch. tepidum LH1-RC complex. Preferential truncation of two consecutive, positively charged Lys residues at the C-terminus of the LH1 α-polypeptide was observed for the Sr-cultured cells. A proportion of the truncated LH1 α-polypeptide increased during repeated subculturing in the Sr-substituted medium. This result suggests that the truncation is a biochemical adaptation to reduce the electrostatic interactions and/or steric repulsion at the C-terminus when Sr substitutes for Ca in the LH1 complex. Limited proteolysis of the native Ca-LH1 complex with lysyl protease revealed selective truncations at the Lys residues in both C- and N-terminal extensions of the α- and β-polypeptides. The spectral properties and thermostability of the partially digested native LH1-RC complexes were similar to those of the biosynthetically Sr-substituted LH1-RC complexes in their Ca-bound forms. Based on these findings, we propose that the C-terminal domain of the LH1 α-polypeptide plays important roles in retaining proper structure and function of the LH1-RC complex in Tch. tepidum.
热嗜硫菌(Thermochromatium )Tch. tepidum 的捕光 1 反应中心(LH1-RC)复合物结合 Ca 离子作为辅助因子,Ca 结合在其特征的 Q 吸收在 915nm 处增强和热稳定性中起重要作用。在热嗜硫菌 Tch. tepidum 的生长培养物中,Ca 可以被 Sr 生物合成取代。然而,在这些细胞中,由此产生的 Sr 取代的 LH1-RC 复合物不显示 Ca 生长细胞的吸收最大值和热稳定性,表明在 Ca 和 Sr 培养细胞的 LH1 复合物之间存在固有结构差异。在这项研究中,我们研究了生物合成 Sr 取代和有限蛋白水解对 Tch. tepidum LH1-RC 复合物的光谱特性和热稳定性的影响。观察到 Sr 培养细胞中 LH1α-多肽的 C 末端连续两个带正电荷的 Lys 残基优先截断。在 Sr 取代的培养基中重复传代时,截断的 LH1α-多肽比例增加。该结果表明,当 Sr 在 LH1 复合物中取代 Ca 时,该截断是一种生化适应,以减少 C 末端的静电相互作用和/或空间排斥。用赖氨肽酶对天然 Ca-LH1 复合物进行有限蛋白水解,揭示了α-和β-多肽的 C 和 N 末端延伸中 Lys 残基的选择性截断。部分消化的天然 LH1-RC 复合物的光谱特性和热稳定性与生物合成 Sr 取代的 LH1-RC 复合物在其 Ca 结合形式下相似。基于这些发现,我们提出 LH1α-多肽的 C 末端结构域在热嗜硫菌 Tch. tepidum 中保留 LH1-RC 复合物的适当结构和功能方面发挥重要作用。