PT - JOURNAL ARTICLE AU - Aviv Meir AU - Gulshan Walke AU - Fabian Schwerdtfeger AU - Lada Gevorkyan-Airapetov AU - Sharon Ruthstein TI - Exploring the role of the various methionine residues in the <em>Escherichia coli</em> CusB adapter protein AID - 10.1101/681486 DP - 2019 Jan 01 TA - bioRxiv PG - 681486 4099 - http://biorxiv.org/content/early/2019/06/24/681486.short 4100 - http://biorxiv.org/content/early/2019/06/24/681486.full AB - The dissemination of resistant pathogenic microbes has become one of the most challenging problems that modern medicine has faced. Developing novel drugs based on new molecular targets that previously were not targeted, is therefore the highest priority in antibiotics research. One approach that has been recently suggested is to inhibit copper transporters in prokaryotic systems. Copper is required for many biological pathways, but sometimes it can harm the cell. Pathogenic systems have a highly sophisticated copper-regulation network; therefore, a better understanding of how this network operates at the molecular level should assist in developing the next generation of antibiotics. The CusB protein is part of the CusCBA periplasmic Cu(I) efflux system in Gram-negative bacteria, and it was recently reported to play a key role in the functioning of the whole CusCBA system, in which conformational changes as well as the assembly/disassembly process control the opening of the transporter. More knowledge of the underlying mechanism is needed to attain a full understanding of CusB functioning, which is associated with targeting specific and crucial residues in CusB. Here, we combine in-vitro structural measurements, which used EPR spectroscopy and UV-Vis measurements, with cell experiments to explore the role of the various methionine residues in CusB. We targeted two methionine residues (M227 and M241) that are essential for the proper function of CusB.