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苜蓿中华根瘤菌(Sinorhizobium meliloti)LuxR家族转录因子ExpR调节motC操纵子的表达 被引量:3

A LuxR family regulator,ExpR regulates the expression of motC operon from Sinorhizobium meliloti
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摘要 目前已知苜蓿中华根瘤菌(S.meliloti)Rm1021 ExpR+突变导致胞外多糖Ⅱ(EPSⅡ)的过量表达,而胞外多糖是根瘤菌成功侵染宿主植物形成有效根瘤必需的物质。软琼脂板实验发现ExpR+突变株运动能力有缺陷。但是鞭毛染色实验并没有检测到突变株的鞭毛与野生型有什么不同。通过启动子-lacZ融合子进一步研究突变株中基因表达的差异发现,ExpR以细胞密度依赖的方式调节motC操纵子的表达。由此可见,在苜蓿中华根瘤菌中,ExpR同时参与了胞外多糖Ⅱ的合成和细胞运动能力的调节。 In Sinorhizobium meliloti strain Rm1021, ExpR^+ mutation results in the overproduction of EPS II, which is required for efficient invasion of root nodules on the host plant alfalfa, When rhizobia were grown in LB/MC medium for 36-hour then placed at room temperature, most of ExpR^+ mutant (Rm8530) cells aggregated at the bottom of the tubes, but ExpR^+ sinR double mutant Rm11528 and wild type Rm1021 did not. The ExpR^+ mutant was also found to swim slower than Rm1021 on swarming plates, but the ExpR^+ sinR^- mutant showed almost the same as wild type, The average diameter of swarming plaques for Rm8530, Rm11528 and Rml021 was 13, 16 and 16mm respectively, when bacteria were incubated at 28℃ for two days. After four days, the plaques enlarged to 17, 22 and 20mm, respectively, These results indicate that ExpR^+ mutation causes a serious defection of motility in this condition. By flagella staining with silver nitrate method, it was noted that all three strains had flagella, It suggests that the swimming behavior of Rm8530 may not result from the change in components and structures of flagella. Based on DNA microarray data, Hoang speculated that the Sin system seemed to regulate a multitude of genes in S. meliloti, including genes that participate in succinoglycan production, motility, and chemotaxis, as well as other cellular processes (Hoang et al. 2004). And most of the regulation by the Sin system was dependent on the presence of the ExpR regulator, Accordingly, the expression of the flaA, cheY1 and motC operon was determined using promoter: :lacZ fusion in different genetic backgrounds. The results showed two fold lower of motC expression activity in ExpR+ mutant strain Rm8530 than in wild-type strain Rm1021 at early exponential phase and this decrease was hold back by further mutation of sinR. However, the β-galactosidase activity of motC-lacZ fusion was almost the same in three strains at later exponential phase. These results suggest that ExpR may repress the expression of motC operon in a low cell density, but this repression can be deprived in a higher cell density, it may be a good explanation to the motility of Rm8530 on swarming plates, since it is lower cell density of bacteria on the swarming plates. Therefore, it may be concluded that ExpR both involved in the regulation of EPS II production and motility in S. meliloti.
出处 《微生物学报》 CAS CSCD 北大核心 2006年第3期474-477,共4页 Acta Microbiologica Sinica
基金 国家"973项目"(2001CB108901)~~
关键词 SINORHIZOBIUM meliloti ExpR β-galactosidase Motility Sinorhizobium meliloti ExpR β-galactosidase Motility
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参考文献18

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同被引文献35

  • 1方宣钧,尤崇杓.固氮菌酸性胞外多糖生物合成的基因调控(综述)[J].农业生物技术学报,1995,3(1):21-27. 被引量:4
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