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球形红杆菌反应中心的定点突变I(L177)H影响细菌叶绿素P(A)和B(B)的配位。

The site-directed mutation I(L177)H in Rhodobacter sphaeroides reaction center affects coordination of P(A) and B(B) bacteriochlorophylls.

作者信息

Vasilieva L G, Fufina T Y, Gabdulkhakov A G, Leonova M M, Khatypov R A, Shuvalov V A

机构信息

Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino, Moscow, Russia.

出版信息

Biochim Biophys Acta. 2012 Aug;1817(8):1407-17. doi: 10.1016/j.bbabio.2012.02.008. Epub 2012 Feb 15.

Abstract

To explore the influence of the I(L177)H single mutation on the properties of the nearest bacteriochlorophylls (BChls), three reaction centers (RCs) bearing double mutations were constructed in the photosynthetic purple bacterium Rhodobacter sphaeroides, and their properties and pigment content were compared with those of the correspondent single mutant RCs. Each pair of the mutations comprised the amino acid substitution I(L177)H and another mutation altering histidine ligand of BChl P(A) or BChl B(B). Contrary to expectations, the double mutation I(L177)H+H(L173)L does not bring about a heterodimer RC but causes a 46nm blue shift of the long-wavelength P absorbance band. The histidine L177 or a water molecule were suggested as putative ligands for P(A) in the RC I(L177)H+H(L173)L although this would imply a reorientation of the His backbone and additional rearrangements in the primary donor environment or even a repositioning of the BChl dimer. The crystal structure of the mutant I(L177)H reaction center determined to a resolution of 2.9Å shows changes at the interface region between the BChl P(A) and the monomeric BChl B(B). Spectral and pigment analysis provided evidence for β-coordination of the BChl B(B) in the double mutant RC I(L177)H+H(M182)L and for its hexacoordination in the mutant reaction center I(L177)H. Computer modeling suggests involvement of two water molecules in the β-coordination of the BChl B(B). Possible structural consequences of the L177 mutation affecting the coordination of the two BChls P(A) and B(B) are discussed. This article is part of a Special Issue entitled: Photosynthesis Research for Sustainability: from Natural to Artificial.

摘要

为探究I(L177)H单突变对最近的细菌叶绿素(BChls)性质的影响,在光合紫色细菌球形红细菌中构建了三个带有双突变的反应中心(RCs),并将它们的性质和色素含量与相应的单突变RCs进行了比较。每对突变包括氨基酸取代I(L177)H和另一个改变BChl P(A)或BChl B(B)的组氨酸配体的突变。与预期相反,双突变I(L177)H+H(L173)L并未产生异二聚体RC,而是导致长波长P吸收带发生46nm的蓝移。尽管这意味着His主链的重新定向以及初级供体环境中的额外重排,甚至是BChl二聚体的重新定位,但组氨酸L177或水分子被认为是RC I(L177)H+H(L173)L中P(A)的假定配体。分辨率为2.9Å的突变体I(L177)H反应中心的晶体结构显示,BChl P(A)和单体BChl B(B)之间的界面区域发生了变化。光谱和色素分析为双突变RC I(L177)H+H(M182)L中BChl B(B)的β配位以及突变反应中心I(L177)H中其六配位提供了证据。计算机建模表明两个水分子参与了BChl B(B)的β配位。讨论了影响两个BChls P(A)和B(B)配位的L177突变可能产生的结构后果。本文是名为:可持续性光合作用研究:从自然到人工的特刊的一部分。

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