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双淀粉样结构域促进了链霉菌气生形态发生过程中 Chaplin 蛋白的差异功能。

Dual amyloid domains promote differential functioning of the chaplin proteins during Streptomyces aerial morphogenesis.

机构信息

Department of Biology and MG DeGroote Institute for Infectious Disease Research, McMaster University, 1280 Main Street West, Hamilton, ON, Canada L8S 4K1.

出版信息

Proc Natl Acad Sci U S A. 2011 Jun 14;108(24):9821-6. doi: 10.1073/pnas.1018715108. Epub 2011 May 31.

Abstract

The chaplin proteins are functional amyloids found in the filamentous Streptomyces bacteria. These secreted proteins are required for the aerial development of Streptomyces coelicolor, and contribute to an intricate rodlet ultrastructure that decorates the surfaces of aerial hyphae and spores. S. coelicolor encodes eight chaplin proteins. Previous studies have revealed that only three of these proteins (ChpC, ChpE, and ChpH) are necessary for promoting aerial development, and of these three, ChpH is the primary developmental determinant. Here, we show that the model chaplin, ChpH, contains two amyloidogenic domains: one in the N terminus and one in the C terminus of the mature protein. These domains have different polymerization properties as determined using fluorescence spectroscopy, secondary structure analyses, and electron microscopy. We coupled these in vitro assays with in vivo genetic studies to probe the connection between ChpH amyloidogenesis and its biological function. Using mutational analyses, we demonstrated that both N- and C-terminal amyloid domains of ChpH were required for promoting aerial hypha formation, while the N-terminal domain was dispensable for assembly of the rodlet ultrastructure. These results suggest that there is a functional differentiation of the dual amyloid domains in the chaplin proteins.

摘要

Chaplin 蛋白是在丝状链霉菌细菌中发现的功能性淀粉样蛋白。这些分泌蛋白是链霉菌天蓝色素空中发育所必需的,并有助于复杂的rodlet 超微结构的形成,该结构装饰了气生菌丝和孢子的表面。天蓝色链霉菌编码了 8 种 Chaplin 蛋白。先前的研究表明,这些蛋白中只有 3 种(ChpC、ChpE 和 ChpH)对促进空中发育是必要的,而在这 3 种蛋白中,ChpH 是主要的发育决定因素。在这里,我们表明模型 Chaplin 蛋白 ChpH 包含两个淀粉样结构域:一个在成熟蛋白的 N 端,一个在 C 端。这些结构域具有不同的聚合特性,这是通过荧光光谱、二级结构分析和电子显微镜确定的。我们将这些体外测定与体内遗传研究相结合,以探究 ChpH 淀粉样变性与其生物学功能之间的联系。通过突变分析,我们证明了 ChpH 的 N-和 C-末端淀粉样结构域都需要促进气生菌丝的形成,而 N-末端结构域对于 rodlet 超微结构的组装是可有可无的。这些结果表明,Chaplin 蛋白中的双重淀粉样结构域存在功能分化。

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