细菌细胞结构
细菌
细胞粘附
细胞
细胞生物学
粘附
细胞粘附分子
细胞膜
化学
生物
计算生物学
生物化学
遗传学
有机化学
作者
Po-Yin Chen,Yung-Chih Chen,Po-Pang Chen,Kuan-Ting Lin,Karen Sargsyan,Chao‐Ping Hsu,Wei-Le Wang,Kuo‐Chiang Hsia,See‐Yeun Ting
标识
DOI:10.1038/s41467-024-51017-1
摘要
Developing programmable bacterial cell-cell adhesion is of significant interest due to its versatile applications. Current methods that rely on presenting cell adhesion molecules (CAMs) on bacterial surfaces are limited by the lack of a generalizable strategy to identify such molecules targeting bacterial membrane proteins in their natural states. Here, we introduce a whole-cell screening platform designed to discover CAMs targeting bacterial membrane proteins within a synthetic bacteria-displayed nanobody library. Leveraging the potency of the bacterial type IV secretion system—a contact-dependent DNA delivery nanomachine—we have established a positive feedback mechanism to selectively enrich for bacteria displaying nanobodies that target antigen-expressing cells. Our platform successfully identified functional CAMs capable of recognizing three distinct outer membrane proteins (TraN, OmpA, OmpC), demonstrating its efficacy in CAM discovery. This approach holds promise for engineering bacterial cell-cell adhesion, such as directing the antibacterial activity of programmed inhibitor cells toward target bacteria in mixed populations. Cell adhesion molecules (CAMs) are key for programming bacterial cell-cell adhesion. By leveraging the transfer of selectable marker genes between bacterial cells, the authors present a method for discovering synthetic CAMs that target naturally occurring bacterial surface components.
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