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析氧外在蛋白(PsbO、P、Q、R):生物信息学与功能分析

Oxygen-evolving extrinsic proteins (PsbO,P,Q,R): bioinformatic and functional analysis.

作者信息

De Las Rivas Javier, Heredia Pedro, Roman Angel

机构信息

Bioinformatics and Functional Genomics Research Group, Instituto de Biología Molecular y Celular del Cáncer (IBMCC, CSIC/USAL) Salamanca, Spain.

出版信息

Biochim Biophys Acta. 2007 Jun;1767(6):575-82. doi: 10.1016/j.bbabio.2007.01.018. Epub 2007 Feb 7.

Abstract

The water-splitting and oxygen-evolving (OE) reaction is carried out by a large multisubunit protein complex, Photosystem II (PSII), that has two distinct regions: a membrane intrinsic-region that includes most of the PSII subunits and a lumenal extrinsic-region that is in close association to the manganese catalytic center. The recently determined PSII 3D structures from cyanobacteria provide a considerable amount of new knowledge about the OE architecture (K.N. Ferreira, T.M. Iverson, K. Maghlaoui, J. Barber, S. Iwata, Architecture of the photosynthetic oxygen-evolving center, Science 303 (2004) 1831-1838; B. Loll, J. Kern, W. Saenger, A. Zouni, J. Biesiadka, Towards complete cofactor arrangement in the 3.0 A resolution structure of photosystem II, Nature 438 (2005) 1040-1044). Most of the intrinsic core PSII polypeptides have been well conserved through evolution from ancient cyanobacteria to modern plants, keeping the essence of PSII light driven reactions from prokaryotes to eukaryotes; but what is striking is the large number of changes that have occurred in the oxygen-evolving extrinsic proteins (OEEp) associated to PSII lumenal side. For unknown reasons plant PSII has required the "invention" of three OEEps: PsbP (23 kDa), PsbQ (16 kDa) and PsbR (10 kDa); associated to the ubiquitous OEEp PsbO (33 kDa). This set of proteins seems to be required in plants for the full activity and stability of the OE center in vivo, but their specific function is not clear. In this paper, bioinformatics and functional data show that the OEEps present in plants and green algae are very distinct from their prokaryotic counterparts. Moreover, clear differences are found for PsbQ from higher plants and green algae; and a relationship has been found between PsbR and the Mn cluster.

摘要

水分解和析氧(OE)反应由一个大型多亚基蛋白复合物光系统II(PSII)进行,该复合物有两个不同区域:一个膜内在区域,包含大多数PSII亚基;一个腔外在区域,与锰催化中心紧密相连。最近从蓝细菌中确定的PSII三维结构提供了大量关于OE结构的新知识(K.N.费雷拉、T.M.艾弗森、K.马格拉维、J.巴伯、S.岩田,光合放氧中心的结构,《科学》303卷(2004年)1831 - 1838页;B.洛尔、J.克恩、W.森格尔、A.祖尼、J.比西亚德卡,关于光系统II 3.0埃分辨率结构中辅因子的完整排列,《自然》438卷(2005年)1040 - 1044页)。从古代蓝细菌到现代植物的进化过程中,大多数内在核心PSII多肽一直高度保守,保持了从原核生物到真核生物PSII光驱动反应的本质;但引人注目的是,与PSII腔侧相关的析氧外在蛋白(OEEp)发生了大量变化。出于未知原因,植物PSII需要“发明”三种OEEp:PsbP(23 kDa)、PsbQ(16 kDa)和PsbR(10 kDa);它们与普遍存在的OEEp PsbO(33 kDa)相关。这组蛋白似乎是植物体内OE中心充分活性和稳定性所必需的,但其具体功能尚不清楚。在本文中,生物信息学和功能数据表明,植物和绿藻中的OEEp与它们的原核对应物有很大不同。此外,高等植物和绿藻的PsbQ存在明显差异;并且发现了PsbR与锰簇之间的关系。

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