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半胱氨酸蛋白酶 Cwp84 和 Cwp13 在艰难梭菌细胞壁生物合成中的作用。

Roles of cysteine proteases Cwp84 and Cwp13 in biogenesis of the cell wall of Clostridium difficile.

机构信息

Department of Life Sciences, Imperial College London, London SW7 2AZ, UK.

出版信息

J Bacteriol. 2011 Jul;193(13):3276-85. doi: 10.1128/JB.00248-11. Epub 2011 Apr 29.

DOI:10.1128/JB.00248-11
PMID:21531808
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3133288/
Abstract

Clostridium difficile expresses a number of cell wall proteins, including the abundant high-molecular-weight and low-molecular-weight S-layer proteins (SLPs). These proteins are generated by posttranslational cleavage of the precursor SlpA by the cysteine protease Cwp84. We compared the phenotypes of C. difficile strains containing insertional mutations in either cwp84 or its paralog cwp13 and complemented with plasmids expressing wild-type or mutant forms of their genes. We show that the presence of uncleaved SlpA in the cell wall of the cwp84 mutant results in aberrant retention of other cell wall proteins at the cell surface, as demonstrated by secretion of the proteins Cwp66 and Cwp2 into the growth medium. These phenotypes are restored by complementation with a plasmid expressing wild-type Cwp84 enzyme but not with one encoding a Cys116Ala substitution in the active site. The cwp13 mutant cleaved the SlpA precursor normally and had a wild-type-like colony phenotype. Both Cwp84 and Cwp13 are produced as proenzymes which are processed by cleavage to produce mature enzymes. In the case of Cwp84, this cleavage does not appear to be autocatalytic, whereas in Cwp13 autocatalysis was demonstrated as a Cys109Ala mutant did not undergo processing. Cwp13 appears to have a role in processing of Cwp84 but is not essential for Cwp84 activity. Cwp13 cleaves SlpA in the HMW SLP domain, which we suggest may reflect a role in cleavage and degradation of misfolded proteins at the cell surface.

摘要

艰难梭菌表达多种细胞壁蛋白,包括丰富的高分子量和低分子量 S 层蛋白(SLP)。这些蛋白质是通过半胱氨酸蛋白酶 Cwp84 对前体 SlpA 的翻译后切割产生的。我们比较了含有 cwp84 或其旁系同源物 cwp13 插入突变的艰难梭菌菌株的表型,并通过表达野生型或突变基因的质粒进行了互补。我们表明,cwp84 突变体细胞壁中未切割的 SlpA 的存在导致其他细胞壁蛋白在细胞表面异常保留,如 Cwp66 和 Cwp2 蛋白分泌到生长培养基中所示。这些表型通过表达野生型 Cwp84 酶的质粒互补得到恢复,但不能通过表达活性位点 Cys116Ala 取代的质粒互补得到恢复。cwp13 突变体正常切割 SlpA 前体,具有野生型样的菌落表型。Cwp84 和 Cwp13 均作为前酶产生,通过切割产生成熟酶。在 Cwp84 的情况下,这种切割似乎不是自催化的,而在 Cwp13 中,自催化作用得到了证明,因为 Cys109Ala 突变体未发生加工。Cwp13 似乎在 Cwp84 的加工中起作用,但不是 Cwp84 活性所必需的。Cwp13 在 HMW SLP 结构域中切割 SlpA,我们认为这可能反映了在细胞表面切割和降解错误折叠蛋白的作用。

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