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集胞藻6803中的糖原合酶亚型:通过定向诱变确定糖原合成的不同作用

Glycogen synthase isoforms in Synechocystis sp. PCC6803: identification of different roles to produce glycogen by targeted mutagenesis.

作者信息

Yoo Sang-Ho, Lee Byung-Hoo, Moon Youyoun, Spalding Martin H, Jane Jay-Lin

机构信息

Department of Food Science & Technology and Carbohydrate Bioproduct Research Center, Sejong University, Seoul, Korea.

Whistler Center for Carbohydrate Research and Department of Food Science, Purdue University, West Lafayette, Indiana, United States of America.

出版信息

PLoS One. 2014 Mar 17;9(3):e91524. doi: 10.1371/journal.pone.0091524. eCollection 2014.

Abstract

Synechocystis sp. PCC6803 belongs to cyanobacteria which carry out photosynthesis and has recently become of interest due to the evolutionary link between bacteria and plant species. Similar to other bacteria, the primary carbohydrate storage source of Synechocystis sp. PCC6803 is glycogen. While most bacteria are not known to have any isoforms of glycogen synthase, analysis of the genomic DNA sequence of Synechocystis sp. PCC6803 predicts that this strain encodes two isoforms of glycogen synthase (GS) for synthesizing glycogen structure. To examine the functions of the putative GS genes, each gene (sll1393 or sll0945) was disrupted by double cross-over homologous recombination. Zymogram analysis of the two GS disruption mutants allowed the identification of a protein band corresponding to each GS isoform. Results showed that two GS isoforms (GSI and GSII) are present in Synechocystis sp. PCC6803, and both are involved in glycogen biosynthesis with different elongation properties: GSI is processive and GSII is distributive. Total GS activities in the mutant strains were not affected and were compensated by the remaining isoform. Analysis of the branch-structure of glycogen revealed that the sll1393- mutant (GSI-) produced glycogen containing more intermediate-length chains (DP 8-18) at the expense of shorter and longer chains compared with the wild-type strain. The sll0945- mutant (GSII-) produced glycogen similar to the wild-type, with only a slightly higher proportion of short chains (DP 4-11). The current study suggests that GS isoforms in Synechocystis sp. PCC6803 have different elongation specificities in the biosynthesis of glycogen, combined with ADP-glucose pyrophosphorylase and glycogen branching enzyme.

摘要

集胞藻PCC6803属于进行光合作用的蓝细菌,由于细菌与植物物种之间的进化联系,它最近受到了关注。与其他细菌类似,集胞藻PCC6803的主要碳水化合物储存源是糖原。虽然大多数细菌没有糖原合酶的任何同工型,但对集胞藻PCC6803基因组DNA序列的分析预测,该菌株编码两种糖原合酶(GS)同工型来合成糖原结构。为了研究假定的GS基因的功能,每个基因(sll1393或sll0945)通过双交换同源重组被破坏。对两个GS破坏突变体的酶谱分析使得能够鉴定与每个GS同工型相对应的蛋白条带。结果表明,集胞藻PCC6803中存在两种GS同工型(GSI和GSII),并且两者都参与具有不同延伸特性的糖原生物合成:GSI是持续性的,GSII是分布性的。突变菌株中的总GS活性不受影响,并由剩余的同工型补偿。对糖原分支结构的分析表明,与野生型菌株相比,sll1393突变体(GSI-)产生的糖原含有更多的中等长度链(DP 8-18),而短链和长链的比例降低。sll0945突变体(GSII-)产生的糖原与野生型相似,只是短链(DP 4-11)的比例略高。目前的研究表明,集胞藻PCC6803中的GS同工型在糖原生物合成中具有不同的延伸特异性,与ADP-葡萄糖焦磷酸化酶和糖原分支酶共同作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37d1/3956634/546c6626a572/pone.0091524.g001.jpg

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