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缺乏光系统I和藻胆体功能的聚球藻属PCC 6803菌株。

Synechocystis sp PCC 6803 strains lacking photosystem I and phycobilisome function.

作者信息

Shen G, Boussiba S, Vermaas W F

机构信息

Department of Botany, Arizona State University, Tempe 85287-1601.

出版信息

Plant Cell. 1993 Dec;5(12):1853-63. doi: 10.1105/tpc.5.12.1853.

Abstract

To design an in vivo system allowing detailed analysis of photosystem II (PSII) complexes without significant interference from other pigment complexes, part of the psaAB operon coding for the core proteins of photosystem I (PSI) and part of the apcE gene coding for the anchor protein linking the phycobilisome to the thylakoid membrane were deleted from the genome of the cyanobacterium Synechocystis sp strain PCC 6803. Upon transformation and segregation at low light intensity (5 microE m-2 sec-1), a PSI deletion strain was obtained that is light tolerant and grows reasonably well under photoheterotrophic conditions at 5 microE m-2 sec-1 (doubling time approximately 28 hr). Subsequent inactivation of apcE by an erythromycin resistance marker led to reduction of the phycobilin-to-chlorophyll ratio and to a further decrease in light sensitivity. The resulting PSI-less/apcE- strain grew photoheterotrophically at normal light intensity (50 microE m-2 sec-1) with a doubling time of 18 hr. Deletion of apcE in the wild type resulted in slow photoautotrophic growth. The remaining phycobilins in apcE- strains were inactive in transferring light energy to PSII. Cells of both the PSI-less and PSI-less/apcE- strains had an approximately sixfold enrichment of PSII on a chlorophyll basis and were as active in oxygen evolution (on a per PSII basis) as the wild type at saturating light intensity. Both PSI-less strains described here are highly appropriate both for detailed PSII studies and as background strains to analyze site- and region-directed PSII mutants in vivo.

摘要

为了设计一种体内系统,能够在不受其他色素复合物显著干扰的情况下对光系统II(PSII)复合物进行详细分析,从集胞藻属蓝藻PCC 6803菌株的基因组中删除了编码光系统I(PSI)核心蛋白的psaAB操纵子的一部分,以及编码将藻胆体连接到类囊体膜的锚定蛋白的apcE基因的一部分。在低光强度(5 μE m-2 s-1)下进行转化和分离后,获得了一种PSI缺失菌株,该菌株耐光,在5 μE m-2 s-1的光异养条件下生长良好(倍增时间约为28小时)。随后用红霉素抗性标记使apcE失活,导致藻胆素与叶绿素的比例降低,光敏感性进一步下降。所得的无PSI/apcE-菌株在正常光强度(50 μE m-2 s-1)下光异养生长,倍增时间为18小时。在野生型中删除apcE导致光自养生长缓慢。apcE-菌株中剩余的藻胆素在将光能转移到PSII方面没有活性。无PSI和无PSI/apcE-菌株的细胞在叶绿素基础上PSII富集约六倍,并且在饱和光强度下(基于每个PSII)放氧活性与野生型一样。这里描述的两种无PSI菌株都非常适合用于详细的PSII研究,以及作为体内分析位点和区域定向PSII突变体的背景菌株。

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