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本文引用的文献

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Genes encoding two chlorosome components from the green sulfur bacteriaChlorobium vibrioforme strain 8327D andChlorobium tepidum.编码绿硫细菌Chlorobium vibrioforme 菌株 8327D 和 Chlorobium tepidum 中两个叶绿素体成分的基因。
Photosynth Res. 1994 Jul;41(1):261-75. doi: 10.1007/BF02184167.
2
Characterization of the csmD and csmE genes from Chlorobium tepidum. The CsmA, CsmC, CsmD, and CsmE proteins are components of the chlorosome envelope.从温暖球形菌中鉴定 csmD 和 csmE 基因。CsmA、CsmC、CsmD 和 CsmE 蛋白是类囊体包膜的组成部分。
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Chlorobium tepidum: insights into the structure, physiology, and metabolism of a green sulfur bacterium derived from the complete genome sequence.嗜热绿硫菌:基于全基因组序列对一种绿色硫细菌的结构、生理学和代谢的深入了解
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Biosynthesis of chlorosome proteins is not inhibited in acetylene-treated cultures of Chlorobium vibrioforme.在经乙炔处理的绿弯菌培养物中,绿体蛋白的生物合成未受抑制。
Photosynth Res. 2002;71(1-2):69-81. doi: 10.1023/A:1014903630687.
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Isolation and characterization of the B798 light-harvesting baseplate from the chlorosomes of Chloroflexus aurantiacus.从橙色绿屈挠菌的叶绿体中分离并鉴定B798光捕获基板。
Biochemistry. 2003 Sep 2;42(34):10246-51. doi: 10.1021/bi034350k.
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Selective protein extraction from Chlorobium tepidum chlorosomes using detergents. Evidence that CsmA forms multimers and binds bacteriochlorophyll a.使用去污剂从嗜温绿菌的叶绿体中选择性提取蛋白质。CsmA形成多聚体并结合细菌叶绿素a的证据。
Biochemistry. 2002 Dec 3;41(48):14403-11. doi: 10.1021/bi026599s.
7
The complete genome sequence of Chlorobium tepidum TLS, a photosynthetic, anaerobic, green-sulfur bacterium.嗜热绿硫菌TLS的全基因组序列,一种光合、厌氧的绿色硫细菌。
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Chlorobium tepidum mutant lacking bacteriochlorophyll c made by inactivation of the bchK gene, encoding bacteriochlorophyll c synthase.通过使编码细菌叶绿素c合酶的bchK基因失活制备的缺乏细菌叶绿素c的嗜热绿菌突变体。
J Bacteriol. 2002 Jun;184(12):3368-76. doi: 10.1128/JB.184.12.3368-3376.2002.
9
Subcellular localization of chlorosome proteins in Chlorobium tepidum and characterization of three new chlorosome proteins: CsmF, CsmH, and CsmX.嗜热绿菌中叶绿体蛋白的亚细胞定位及三种新的叶绿体蛋白CsmF、CsmH和CsmX的特性分析
Biochemistry. 2002 Apr 2;41(13):4358-70. doi: 10.1021/bi012051u.
10
Chromosomal gene inactivation in the green sulfur bacterium Chlorobium tepidum by natural transformation.通过自然转化实现绿色硫细菌嗜温绿菌中的染色体基因失活。
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嗜热绿菌的九个突变体,每个都无法合成不同的叶绿体蛋白,但仍能组装出功能性的叶绿体。

Nine mutants of Chlorobium tepidum each unable to synthesize a different chlorosome protein still assemble functional chlorosomes.

作者信息

Frigaard Niels-Ulrik, Li Hui, Milks Kirstin J, Bryant Donald A

机构信息

Department of Biochemistry and Molecular Biology, The Pennsylvania State University, University Park, Pennsylvania 16802, USA.

出版信息

J Bacteriol. 2004 Feb;186(3):646-53. doi: 10.1128/JB.186.3.646-653.2004.

DOI:10.1128/JB.186.3.646-653.2004
PMID:14729689
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC321489/
Abstract

Chlorosomes of the green sulfur bacterium Chlorobium tepidum comprise mostly bacteriochlorophyll c (BChl c), small amounts of BChl a, carotenoids, and quinones surrounded by a lipid-protein envelope. These structures contain 10 different protein species (CsmA, CsmB, CsmC, CsmD, CsmE, CsmF, CsmH, CsmI, CsmJ, and CsmX) but contain relatively little total protein compared to other photosynthetic antenna complexes. Except for CsmA, which has been suggested to bind BChl a, the functions of the chlorosome proteins are not known. Nine mutants in which a single csm gene was inactivated were created; these mutants included genes encoding all chlorosome proteins except CsmA. All mutants had BChl c contents similar to that of the wild-type strain and had growth rates indistinguishable from or within approximately 90% (CsmC(-) and CsmJ(-)) of those of the wild-type strain. Chlorosomes isolated from the mutants lacked only the protein whose gene had been inactivated and were generally similar to those from the wild-type strain with respect to size, shape, and BChl c, BChl a, and carotenoid contents. However, chlorosomes from the csmC mutant were about 25% shorter than those from the wild-type strain, and the BChl c absorbance maximum was blue-shifted about 8 nm, indicating that the structure of the BChl c aggregates in these chlorosomes is altered. The results of the present study establish that, except with CsmA, when the known chlorosome proteins are eliminated individually, none of them are essential for the biogenesis, light harvesting, or structural organization of BChl c and BChl a within the chlorosome. These results demonstrate that chlorosomes are remarkably robust structures that can tolerate considerable changes in protein composition.

摘要

嗜热绿硫细菌绿弯菌的叶绿体主要由细菌叶绿素c(BChl c)、少量的BChl a、类胡萝卜素和醌组成,被脂蛋白包膜所包围。这些结构包含10种不同的蛋白质(CsmA、CsmB、CsmC、CsmD、CsmE、CsmF、CsmH、CsmI、CsmJ和CsmX),但与其他光合天线复合体相比,其总蛋白含量相对较少。除了被认为能结合BChl a的CsmA外,叶绿体蛋白的功能尚不清楚。构建了9个单个csm基因失活的突变体;这些突变体包括除CsmA外编码所有叶绿体蛋白的基因。所有突变体的BChl c含量与野生型菌株相似,生长速率与野生型菌株无差异或约为野生型菌株的90%(CsmC(-)和CsmJ(-))。从突变体中分离出的叶绿体仅缺少其基因已失活的蛋白质,在大小、形状以及BChl c、BChl a和类胡萝卜素含量方面通常与野生型菌株的叶绿体相似。然而,csmC突变体的叶绿体比野生型菌株的短约25%,BChl c吸收峰蓝移约8 nm,表明这些叶绿体中BChl c聚集体的结构发生了改变。本研究结果表明,除了CsmA外,当已知的叶绿体蛋白被逐个去除时,它们中没有一个对于叶绿体中BChl c和BChl a的生物合成、光捕获或结构组织是必需的。这些结果表明,叶绿体是非常稳健的结构,能够耐受蛋白质组成的相当大的变化。