Energetic and structural control of polyspecificity in a multidrug transporter

S Silas T. Miller (Cellular and Molecular Biology Graduate Program, University of Wisconsin–Madison) K Katherine A. Henzler-Wildman (Department of Biochemistry, University of Wisconsin–Madison) S Srivatsan Raman

Abstract

Multidrug efflux pumps are dynamic molecular machines that drive antibiotic resistance by harnessing ion gradients to export chemically diverse substrates. Despite their clinical importance, the molecular principles underlying multidrug promiscuity and energy efficiency remain poorly understood. Using multiparametric deep mutational scanning across eight substrates and two energy conditions, we deconvolute the contributions of substrate recognition, energetic coupling, and protein stability, providing an integrated, high-resolution view of multidrug transport. We find that substrate specificity arises from a distributed network of residues extending beyond the binding site, with mutations that reshape binding, coupling, conformational flexibility, and membrane interactions. Further, we apply a pH-based selection scheme to measure the effect of mutation on pH-dependent transport efficiency. By integrating these data, we reveal a fundamental relationship between efficiency and promiscuity: Highly efficient variants exhibit broad substrate profiles, while inefficient variants are narrower. These findings establish a direct link between energy coupling and polyspecificity, uncovering the biochemical logic underlying multidrug transport.

Article Details

Volume / Issue Vol. 122, Issue 52
Published December 30, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (3)

S

Silas T. Miller

Cellular and Molecular Biology Graduate Program, University of Wisconsin–Madison

K

Katherine A. Henzler-Wildman

Department of Biochemistry, University of Wisconsin–Madison

S

Srivatsan Raman