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集胞藻PCC 6803中Sll1558在环境胁迫耐受性方面的特性分析

Characterization of Sll1558 in environmental stress tolerance of Synechocystis sp. PCC 6803.

作者信息

Uchiyama Junji, Ito Yutaro, Matsuhashi Ayumi, Ichikawa Yuta, Sambe Mamoru, Kitayama Shuichi, Yoshino Yuka, Moriyama Atushi, Kohga Hidetaka, Ogawa Satoru, Ohta Hisataka

机构信息

Department of Biology, Faculty of Science, Tokyo University of Science, Shinjuku-ku, Tokyo, 162-8601, Japan.

Graduate School of Mathematics and Science Education, Tokyo University of Science, Shinjuku-ku, Tokyo, 162-8601, Japan.

出版信息

Photosynth Res. 2020 Dec;146(1-3):165-174. doi: 10.1007/s11120-020-00759-2. Epub 2020 May 18.

Abstract

So far, the molecular mechanisms underlying the acidic-stress responses of plants are complicated and only fragmentally understood. Here, we investigated the mechanisms responsible for acidic-stress acclimation. Previously, DNA microarray analysis identified the sll1558 gene in Synechocystis sp. PCC 6803 (hereafter called Synechocystis 6803) to be upregulated following short-term acid treatment (1 h at pH 3.0). The sll1558 gene encodes uridine diphosphate-glucose pyrophosphorylase (UDP-glucose pyrophosphorylase), which catalyzes the conversion of glucose-1-phosphate into UDP-glucose. We constructed mutant cells for this gene and analyzed their phenotype. The sll1558 gene did not completely segregate in sll1558 mutant cells; thus, Sll1558 is essential for the survival of Synechocystis 6803. Besides, the partially disrupted sll1558 mutant cells were highly sensitive to acidic stress (pH 6.0) as well as other stress conditions (high salt, high osmolality, high/low temperature, and ultraviolet-B stress); the number of sll1558 transcripts increased under these conditions. UDP-glucose is used for the synthesis of various materials, such as glycolipids. From the membrane lipid composition analysis, digalactosyldiacylglycerol decreased and phosphatidylglycerol increased in the partially disrupted sll1558 mutant cells under acidic stress. These results suggest that sll1558 is important not only for the survival of Synechocystis 6803, but also for tolerance under various stress conditions.

摘要

到目前为止,植物酸性胁迫响应背后的分子机制很复杂,人们对此的理解还很零散。在此,我们研究了负责酸性胁迫适应的机制。此前,DNA微阵列分析确定了集胞藻PCC 6803(以下简称集胞藻6803)中的sll1558基因在短期酸处理(pH 3.0处理1小时)后会上调。sll1558基因编码尿苷二磷酸葡萄糖焦磷酸化酶(UDP-葡萄糖焦磷酸化酶),该酶催化1-磷酸葡萄糖转化为UDP-葡萄糖。我们构建了该基因的突变细胞并分析了它们的表型。sll1558基因在sll1558突变细胞中没有完全分离;因此,Sll1558对集胞藻6803的存活至关重要。此外,部分破坏的sll1558突变细胞对酸性胁迫(pH 6.0)以及其他胁迫条件(高盐、高渗透压、高温/低温和紫外线B胁迫)高度敏感;在这些条件下,sll1558转录本的数量增加。UDP-葡萄糖用于合成各种物质,如糖脂。通过膜脂成分分析,在酸性胁迫下,部分破坏的sll1558突变细胞中的二半乳糖基二酰基甘油减少,磷脂酰甘油增加。这些结果表明,sll1558不仅对集胞藻6803的存活很重要,而且对在各种胁迫条件下的耐受性也很重要。

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