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莱茵衣藻LHCBM9启动子的硫响应性

Sulphur responsiveness of the Chlamydomonas reinhardtii LHCBM9 promoter.

作者信息

Sawyer Anne L, Hankamer Ben D, Ross Ian L

机构信息

Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD, 4072, Australia.

出版信息

Planta. 2015 May;241(5):1287-302. doi: 10.1007/s00425-015-2249-9. Epub 2015 Feb 12.

Abstract

A 44-base-pair region in the Chlamydomonas reinhardtii LHCBM9 promoter is essential for sulphur responsiveness. The photosynthetic light-harvesting complex (LHC) proteins play essential roles both in light capture, the first step of photosynthesis, and in photoprotective mechanisms. In contrast to the other LHC proteins and the majority of photosynthesis proteins, the Chlamydomonas reinhardtii photosystem II-associated LHC protein, LHCBM9, was recently reported to be up-regulated under sulphur deprivation conditions, which also induce hydrogen production. Here, we examined the sulphur responsiveness of the LHCBM9 gene at the transcriptional level, through promoter deletion analysis. The LHCBM9 promoter was found to be responsive to sulphur deprivation, with a 44-base-pair region between nucleotide positions -136 and -180 relative to the translation start site identified as essential for this response. Anaerobiosis was found to enhance promoter activity under sulphur deprivation conditions, however, alone was unable to induce promoter activity. The study of LHCBM9 is of biological and biotechnological importance, as its expression is linked to photobiological hydrogen production, theoretically the most efficient process for biofuel production, while the simplicity of using an S-deprivation trigger enables the development of a novel C. reinhardtii-inducible promoter system based on LHCBM9.

摘要

莱茵衣藻LHCBM9启动子中的一个44个碱基对的区域对硫响应至关重要。光合捕光复合体(LHC)蛋白在光合作用的第一步即光捕获以及光保护机制中都发挥着重要作用。与其他LHC蛋白和大多数光合作用蛋白不同,莱茵衣藻光系统II相关的LHC蛋白LHCBM9最近被报道在硫缺乏条件下会上调,而硫缺乏条件也会诱导产氢。在这里,我们通过启动子缺失分析在转录水平上研究了LHCBM9基因的硫响应性。发现LHCBM9启动子对硫缺乏有响应,相对于翻译起始位点,在核苷酸位置-136和-180之间的一个44个碱基对的区域被确定为这种响应所必需的。发现厌氧在硫缺乏条件下会增强启动子活性,然而,单独的厌氧不能诱导启动子活性。对LHCBM9的研究具有生物学和生物技术重要性,因为其表达与光生物产氢相关,从理论上讲,光生物产氢是生物燃料生产中最有效的过程,而使用硫缺乏触发因素的简便性使得能够开发一种基于LHCBM9的新型莱茵衣藻诱导型启动子系统。

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