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六配位细菌叶绿素辅因子在红假单胞菌反应中心的结构和光谱后果。

Structural and spectroscopic consequences of hexacoordination of a bacteriochlorophyll cofactor in the Rhodobacter sphaeroides reaction center .

机构信息

Department of Physics and Astronomy, Free University of Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.

出版信息

Biochemistry. 2010 Mar 9;49(9):1882-92. doi: 10.1021/bi901922t.

Abstract

The structural and functional consequences of changing the coordination state of one of the bacteriochlorophyll (BChl) cofactors in the purple bacterial reaction center have been explored. A combination of steady state spectroscopy and X-ray crystallography was used to demonstrate that mutagenesis of residue 181 of the L-polypeptide from Phe to Arg (FL181R) causes the BChl at the accessory (B(B)) position on the so-called inactive cofactor branch to become hexacoordinated, with no significant changes to the structure of the surrounding protein. This change was accompanied by the appearance of a distinctive absorbance band at 631 nm in the room-temperature absorbance spectrum. The ligand donor was not the Arg side chain but rather an intervening water molecule, and contrary to expectations, the Mg of B(B) did not adopt a more in-plane geometry in response to hexacoordination. The mutation caused a disturbance to the detailed conformation of the BChl macrocycle that manifested in a number of subtle changes to the resonance Raman spectrum. Hexacoordination of B(B) produced a small increase in the lifetime of the excited electronic state of the primary donor bacteriochlorophylls (P*), indicating some disturbance to light-driven energy and/or electron transfer events on the time scale of a few picoseconds after light excitation. The B(B) bacteriochlorophyll returned to a pentacoordinated state in a double mutant where the FL181R mutation was combined with removal of the native axial ligand through mutation of His M182 to Leu. Experimental evidence of hexacoordinated bacteriochlorophylls in the literature on antenna proteins is considered, and possible reasons why hexacoordinated bacteriochlorophylls and chlorophylls appear to be avoided in photosynthetic proteins are discussed.

摘要

已经探索了改变细菌反应中心中一个细菌叶绿素(BChl)辅助因子配位状态的结构和功能后果。使用稳态光谱学和 X 射线晶体学的组合证明,L-多肽 181 位的残基从苯丙氨酸突变为精氨酸(FL181R)突变导致所谓的非活性辅因子分支上的 BChl 处于六配位状态,周围蛋白质的结构没有明显变化。这种变化伴随着室温吸收光谱中在 631nm 处出现独特的吸收带。配体供体不是精氨酸侧链,而是一个中间水分子,与预期相反,B(B)的 Mg 并没有为了六配位而采用更平面的几何形状。该突变导致 BChl 大环的详细构象发生了混乱,这在共振拉曼光谱中表现为许多细微的变化。B(B)的六配位导致原初供体细菌叶绿素(P*)的激发电子态的寿命略有增加,表明在光激发后几皮秒的时间尺度上,光驱动能量和/或电子转移事件受到干扰。在 FL181R 突变与通过突变 His M182 为 Leu 去除天然轴向配体相结合的双突变体中,B(B)细菌叶绿素恢复为五配位状态。文献中关于天线蛋白的六配位细菌叶绿素的实验证据被认为是,并且讨论了为什么在光合作用蛋白中似乎避免六配位细菌叶绿素和叶绿素的可能原因。

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