Di Berardo Christina, Capstick David S, Bibb Maureen J, Findlay Kim C, Buttner Mark J, Elliot Marie A
Department of Biology and Institute for Infectious Disease Research, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4K1, Canada.
J Bacteriol. 2008 Sep;190(17):5879-89. doi: 10.1128/JB.00685-08. Epub 2008 Jun 27.
The chaplins are a family of eight secreted proteins that are critical for raising aerial hyphae in Streptomyces coelicolor. These eight chaplins can be separated into two main groups: the long chaplins (ChpA to -C) and the short chaplins (ChpD to -H). The short chaplins can be further subdivided on the basis of their abilities to form intramolecular disulfide bonds: ChpD, -F, -G, and -H contain two Cys residues, while ChpE has none. A "minimal chaplin strain" containing only chpC, chpE, and chpH was constructed and was found to raise a substantial aerial mycelium. This strain was used to examine the roles of specific chaplins. Within this strain, the Cys-containing ChpH was identified as the major polymerization unit contributing to aerial hypha formation and assembly of an intricate rodlet ultrastructure on the aerial surfaces, and the two Cys residues were determined to be critical for its function. ChpC augmented aerial hypha formation and rodlet assembly, likely by anchoring the short chaplins to the cell surface, while ChpE was essential for the viability of wild-type S. coelicolor. Interestingly, the lethal effects of a chpE null mutation could be suppressed by the loss of the other chaplins, the inactivation of the twin arginine translocation (Tat) secretion pathway, or the loss of the rodlins.
Chaplin蛋白家族由8种分泌蛋白组成,对天蓝色链霉菌气生菌丝的生长至关重要。这8种Chaplin蛋白可分为两个主要组:长Chaplin蛋白(ChpA至-C)和短Chaplin蛋白(ChpD至-H)。短Chaplin蛋白可根据其形成分子内二硫键的能力进一步细分:ChpD、-F、-G和-H含有两个半胱氨酸残基,而ChpE没有。构建了一个仅包含chpC、chpE和chpH的“最小Chaplin菌株”,发现其能产生大量气生菌丝体。该菌株用于研究特定Chaplin蛋白的作用。在这个菌株中,含半胱氨酸的ChpH被确定为气生菌丝形成和在气生表面组装复杂小杆超微结构的主要聚合单元,并且确定两个半胱氨酸残基对其功能至关重要。ChpC可能通过将短Chaplin蛋白锚定在细胞表面来增强气生菌丝的形成和小杆组装,而ChpE对野生型天蓝色链霉菌的生存能力至关重要。有趣的是,chpE基因缺失突变的致死效应可以通过其他Chaplin蛋白的缺失、双精氨酸转运(Tat)分泌途径的失活或rodlin蛋白的缺失来抑制。