Uchida Kaoru, Dono Kohei, Aizawa Shin-Ichi
Department of Life Sciences, Prefectural University of Hiroshima, Shobara, Hiroshima, Japan.
Department of Life Sciences, Prefectural University of Hiroshima, Shobara, Hiroshima, Japan
J Bacteriol. 2015 Nov 2;198(3):410-5. doi: 10.1128/JB.00712-15. Print 2016 Feb 1.
The flagellar hook is a short tubular structure located between the external filament and the membrane-bound basal body. The average hook length is 55 nm and is determined by the soluble protein FliK and the integral membrane protein FlhB. Hook elongation is terminated by FliK-mediated cessation of hook protein secretion, followed by the secretion of filamentous proteins. This process is referred to as the substrate specificity switch. Switching of the secretion modes results from a direct interaction between the FliK C-terminal domain (FliKC) and the secretion gate in FlhB. FliKC consists of two α-helices and four β-strands. Loop 2 connects the first two β-sheets and contains a conserved sequence of 9 residues. Genetic and physiological analyses of various fliK partial deletion mutants pointed to loop 2 as essential for induction of a conformational change in the FlhB gate. We constructed single-amino-acid substitutions in the conserved region of loop 2 of FliK and discovered that the loop sequence LRL is essential for the timely switching of secretion modes.
Flagellar protein secretion is controlled by the soluble protein FliK. We discovered that the loop 2 sequence LRL in the FliK C terminus was essential for timely switching of secretion modes. This mechanism is applicable to type three secretions systems that secrete virulence factors in bacterial pathogens.
鞭毛钩是一种短管状结构,位于外部丝状体和膜结合的基体之间。钩的平均长度为55纳米,由可溶性蛋白FliK和整合膜蛋白FlhB决定。钩的伸长通过FliK介导的钩蛋白分泌停止而终止,随后丝状蛋白分泌。这个过程被称为底物特异性转换。分泌模式的转换是由FliK C末端结构域(FliKC)与FlhB中的分泌门直接相互作用引起的。FliKC由两个α螺旋和四个β链组成。环2连接前两个β折叠,并包含一个由9个残基组成的保守序列。对各种fliK部分缺失突变体的遗传和生理学分析表明,环2对于诱导FlhB门的构象变化至关重要。我们在FliK环2的保守区域构建了单氨基酸替换,发现环序列LRL对于分泌模式的及时转换至关重要。
鞭毛蛋白分泌由可溶性蛋白FliK控制。我们发现FliK C末端的环2序列LRL对于分泌模式的及时转换至关重要。这种机制适用于在细菌病原体中分泌毒力因子的三型分泌系统。