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Lhca1天线复合体的突变分析。低能量吸收形式源于色素-色素相互作用。

Mutation analysis of Lhca1 antenna complex. Low energy absorption forms originate from pigment-pigment interactions.

作者信息

Morosinotto Tomas, Castelletti Simona, Breton Jacques, Bassi Roberto, Croce Roberta

机构信息

Dipartimento Scientifico e Tecnologico, Università di Verona. Strada Le Grazie, 15-37234 Verona, Italy.

出版信息

J Biol Chem. 2002 Sep 27;277(39):36253-61. doi: 10.1074/jbc.M205062200. Epub 2002 Jul 2.

DOI:10.1074/jbc.M205062200
PMID:12095992
Abstract

The light harvesting complex Lhca1, one of the four gene products comprising the photosystem I antenna system, has been analyzed by site-directed mutagenesis with the aim of determining the chromophore(s) responsible for its long wavelength chlorophyll spectral form, a specific characteristic of the LHCI antenna complex. A family of mutant proteins, each carrying a mutation at a single chlorophyll-binding residue, was obtained and characterized by biochemical and spectroscopic methods. A map of the chromophores bound to each of the 10 chlorophyll-binding sites was drawn, and the energy levels of the Q(y) transition were determined in most cases. When compared with Lhcb proteins previously analyzed, Lhca1 is characterized by stronger interactions between individual chromophores as detected by both biochemical and spectroscopic methods; most mutations, although targeted to a single residue, lead to the loss of more than one chromophore and of conservative CD signals typical of chlorophyll-chlorophyll interactions. The lower energy absorption form (686 nm at 100K, 688 nm at room temperature), which is responsible for the red-shifted emission components at 690 and 701 nm, typical of Lhca1, is associated with a chlorophyll a/chlorophyll a excitonic interaction originating from a pigment cluster localized in the protein domain situated between helix C and the helix A/helix B cross. This cluster includes chlorophylls bound to sites A5-B5-B6 and a xanthophyll bound to site L2.

摘要

捕光复合体Lhca1是构成光系统I天线系统的四种基因产物之一,已通过定点诱变进行了分析,目的是确定导致其长波长叶绿素光谱形式的发色团,这是LHCI天线复合体的一个特定特征。获得了一系列突变蛋白,每个突变蛋白在单个叶绿素结合残基处携带一个突变,并通过生化和光谱方法进行了表征。绘制了与10个叶绿素结合位点中的每一个结合的发色团图谱,并且在大多数情况下确定了Q(y)跃迁的能级。与先前分析的Lhcb蛋白相比,通过生化和光谱方法检测到,Lhca1的特征是单个发色团之间的相互作用更强;大多数突变虽然针对单个残基,但会导致不止一个发色团的丢失以及叶绿素-叶绿素相互作用典型的保守CD信号的丢失。较低能量吸收形式(在100K时为686nm,在室温下为688nm),它是Lhca1特有的690和701nm处红移发射成分的原因,与一种叶绿素a/叶绿素a激子相互作用相关,这种相互作用源自位于螺旋C与螺旋A/螺旋B交叉处之间的蛋白质结构域中的一个色素簇。这个簇包括与位点A5 - B5 - B6结合的叶绿素以及与位点L2结合的一种叶黄素。

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