Crystal structure and biophysical characterisation of the enterococcal foldase PpiC, a cross-opsonic antigen against gram-positive nosocomial pathogens.

Valeria Napolitano, Eliza Kramarska, Ornella Ghilardi, Felipe Romero-Saavedra, Pompea Del Vecchio, Flavia Squeglia, Johannes Huebner, Rita Berisio
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Abstract

Enterococcus faecium have high rates of antibiotic resistances, with vancomycin-resistant E. faecium acknowledged as the most important in the clinical setting and declared by WHO to be a threat to humankind, for which rapid actions are needed. PpiC is a membrane-bound lipoprotein of E. faecium endowed with both a peptidyl-prolyl isomerase and a foldase activity, and plays a key role in assisting the folding of many secreted enterococcal proteins. It is located at the membrane-wall interface, therefore easily accessible to inhibitors and to the immune system and an ideal target for drug and vaccine development. Despite their potential, enterococcal peptidyl-prolyl isomerases have been understudied. We previously identified PpiC as an important cross-protective vaccine antigen. To gain a better understanding of the PpiC biological role in E. faecium survival, we determined the crystal structure of PpiC and investigated its biophysical properties. Consistent with PpiC's folding activity, the biological assembly of PpiC is a bowl-shaped structure containing two parvulin-type peptidyl-prolyl cis/trans isomerase domains. We also dissected the role of N- and C-terminal regions of the molecule in its dimerisation, an event which is predicted to play an important role in the folding of client proteins. Our data point to a functional cross-talk between the foldase and peptidyl-prolyl isomerase activities of PpiC, through the protein-swapping involved in dimerisation. Also, our work provides key structural data for the design of antimicrobials and cross-protective vaccine antigens against nosocomial infections.

肠球菌折叠酶PpiC的晶体结构和生物物理特性,PpiC是一种抗革兰氏阳性医院病原体的交叉抗原。
粪肠球菌具有很高的抗生素耐药率,其中耐万古霉素的粪肠球菌在临床环境中被认为是最重要的,并被世卫组织宣布为对人类的威胁,需要对此迅速采取行动。PpiC是粪肠杆菌的一种膜结合脂蛋白,具有肽基脯氨酸异构酶和折叠酶活性,在协助许多分泌的肠球菌蛋白折叠中起关键作用。它位于膜壁界面,因此抑制剂和免疫系统很容易接近,是药物和疫苗开发的理想靶点。尽管肠球菌的多肽-脯氨酸异构酶具有潜力,但对其的研究还不够充分。我们之前已经确定PpiC是一种重要的交叉保护性疫苗抗原。为了更好地了解PpiC在粪肠杆菌存活中的生物学作用,我们测定了PpiC的晶体结构并研究了其生物物理特性。与PpiC的折叠活性一致,PpiC的生物组装是一个碗状结构,包含两个parvulin型肽基脯氨酸顺/反异构酶结构域。我们还剖析了分子的N端和c端区域在其二聚化中的作用,这一事件被预测在客户蛋白的折叠中起重要作用。我们的数据指出PpiC的折叠酶和肽基-丙氨酸异构酶活性之间的功能串扰,通过参与二聚化的蛋白质交换。此外,我们的工作为设计抗医院感染的抗菌剂和交叉保护疫苗抗原提供了关键的结构数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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