Key Laboratory of Ministry of Education for Developmental Genes and Human Diseases, Southeast University, Nanjing, Jiangsu, China.
J Bacteriol. 2013 Jul;195(13):3105-14. doi: 10.1128/JB.02225-12. Epub 2013 May 10.
The MXAN3885 to -3882 gene locus cluster (designated here mcuABCD) of Myxococcus xanthus encodes a member of the archaic chaperone-usher (CU) systems that functions in spore coat formation. We show here that McuD, a putative spore coat protein, affects cellular accumulation and cell surface localization of the spore coat protein McuA. We previously reported that genetic disruption of the putative usher McuC nearly eliminates surface display of McuA and show here that lack of the periplasmic chaperone-like protein McuB, which forms a complex with McuA, has a similar effect. Deletion mutation confirms that the G1 β strand of McuB is absolutely essential for the stability and secretion of McuA. Site-directed mutagenesis identified two additional alternating hydrophobic residues Ile113 and Val115, together with the highly conserved proline within the G1 strand, as critical residues for chaperone function. These findings suggest that the assembly proteins McuB and McuC mediate the transport of McuA onto the cell surface and that McuA may interact with another spore coat protein, McuD, for its secretion. Importantly, although our data argue that the M. xanthus CU system is likely to use the basic principle of donor strand complementation (DSC), as in the cases of classical CU pathways, to promote folding and stabilization of the structural subunit(s), the periplasmic chaperone McuB appears to exhibit structural variation in mediating chaperone-subunit interaction.
粘球菌 MXAN3885 到 -3882 基因座簇(此处指定为 mcuABCD)编码一个古老的伴侣-usher(CU)系统的成员,该系统在孢子外壳形成中起作用。我们在这里表明,假定的孢子外壳蛋白 McuD 影响孢子外壳蛋白 McuA 的细胞积累和细胞表面定位。我们之前报道过,假定的 usher McuC 的遗传破坏几乎消除了 McuA 的表面显示,并且我们在这里表明,缺乏与 McuA 形成复合物的周质类似伴侣蛋白 McuB 具有类似的作用。缺失突变证实 McuB 的 G1β链对于 McuA 的稳定性和分泌是绝对必需的。定点突变鉴定出另外两个交替疏水性残基 Ile113 和 Val115,以及 G1 链内高度保守的脯氨酸,是伴侣功能的关键残基。这些发现表明,组装蛋白 McuB 和 McuC 介导 McuA 转运到细胞表面,并且 McuA 可能与另一种孢子外壳蛋白 McuD 相互作用以进行分泌。重要的是,尽管我们的数据表明,M. xanthus CU 系统可能使用供体链互补(DSC)的基本原理,如经典 CU 途径,但促进结构亚基的折叠和稳定,周质伴侣 McuB 似乎在介导伴侣-亚基相互作用方面表现出结构变化。