Institute of Life Sciences, Université Catholique de Louvain, B-1348 Louvain-la-Neuve, Belgium.
Department of Microbiology, Moyne Institute of Preventive Medicine, School of Genetics and Microbiology, Trinity College Dublin, Dublin 2, Ireland.
Proc Natl Acad Sci U S A. 2017 Apr 4;114(14):3738-3743. doi: 10.1073/pnas.1616805114. Epub 2017 Mar 20.
forms biofilms on indwelling medical devices using a variety of cell-surface proteins. There is growing evidence that specific homophilic interactions between these proteins represent an important mechanism of cell accumulation during biofilm formation, but the underlying molecular mechanisms are still not well-understood. Here we report the direct measurement of homophilic binding forces by the serine-aspartate repeat protein SdrC and their inhibition by a peptide. Using single-cell and single-molecule force measurements, we find that SdrC is engaged in low-affinity homophilic bonds that promote cell-cell adhesion. Low-affinity intercellular adhesion may play a role in favoring biofilm dynamics. We show that SdrC also mediates strong cellular interactions with hydrophobic surfaces, which are likely to be involved in the initial attachment to biomaterials, the first stage of biofilm formation. Furthermore, we demonstrate that a peptide derived from β-neurexin is a powerful competitive inhibitor capable of efficiently blocking surface attachment, homophilic adhesion, and biofilm accumulation. Molecular modeling suggests that this blocking activity may originate from binding of the peptide to a sequence of SdrC involved in homophilic interactions. Our study opens up avenues for understanding the role of homophilic interactions in staphylococcal adhesion, and for the design of new molecules to prevent biofilm formation during infection.
它利用各种细胞表面蛋白在留置医疗器械上形成生物膜。越来越多的证据表明,这些蛋白质之间的特定同型相互作用代表了生物膜形成过程中细胞积累的重要机制,但潜在的分子机制仍未得到很好的理解。在这里,我们报告了丝氨酸-天冬氨酸重复蛋白 SdrC 的同型结合力的直接测量及其被肽抑制。使用单细胞和单分子力测量,我们发现 SdrC 参与促进细胞间粘附的低亲和力同型键。低亲和力细胞间粘附可能在有利于生物膜动力学方面发挥作用。我们表明 SdrC 还介导与疏水性表面的强细胞相互作用,这可能涉及到对生物材料的初始附着,即生物膜形成的第一阶段。此外,我们证明了源自β-神经连接蛋白的肽是一种强大的竞争性抑制剂,能够有效地阻止表面附着、同型粘附和生物膜积累。分子建模表明,这种阻断活性可能源于肽与参与同型相互作用的 SdrC 序列的结合。我们的研究为理解同型相互作用在葡萄球菌粘附中的作用以及设计新分子以防止感染过程中的生物膜形成开辟了途径。