Protein-enhanced small molecule disruptors of ordered membrane domains

K Katherine M. Stefanski G Geoffrey C. Li (Department of Biochemistry, Vanderbilt University School of Medicine) D Dustin D. Luu (School of Molecular Sciences) K Kelvin K. Fosu (School of Molecular Sciences, Arizona State University) E Eduardo Guadarrama (Department of Pharmacology, Feinberg School of Medicine, Northwestern University) J James M. Hutchison (Department of Pharmacology, Yale University School of Medicine) N Nilabh Saksena (Department of Biochemistry, Vanderbilt University School of Medicine) Y Yelyzaveta Zuy (Department of Biochemistry, Vanderbilt University School of Medicine) A Alexander J. Fisch (Department of Biochemistry, Vanderbilt University School of Medicine) T Thomas P. Hasaka (Department of Biochemistry, Vanderbilt University School of Medicine) J Joshua A. Bauer (Department of Biochemistry, Vanderbilt University School of Medicine) A Alfred L. George (Department of Pharmacology, Northwestern University Feinberg School of Medicine) A Anne K. Kenworthy (Department of Molecular Physiology and Biological Physics, University of Virginia) W Wade D. Van Horn (School of Molecular Sciences) C Charles R. Sanders

Abstract

Membrane order and fluidity influence many biological processes. However, tools to manipulate membranes under physiological conditions have been limited. In the process of high-throughput screening for molecules that shift the phase partitioning between ordered and disordered membrane phases of the tetraspan membrane protein peripheral myelin protein 22 (PMP22), we identified two chemically similar compounds, VU0615562 and VU0619195, that shift PMP22 toward the disordered phase and destabilize the “lipid raft”-like ordered phase. Follow-up experiments showed that this latter activity is, counterintuitively, enhanced by the presence of PMP22, which normally stabilizes the ordered phase. Biophysical studies indicate that these compounds reduce raft stability through a mechanism that involves both direct interactions with proteins and the disruption of lipid packing. We further observed that acute treatment of live cells with VU0619195 modulated membrane fluidity and TRPM8 channel function while both compounds altered KCNQ1 channel activity, providing examples of practical applications for these compounds. These protein-enhanced raft modulators reveal distinct lipid and protein-based forces that destabilize membrane order and may be useful as pharmacological tools for manipulating and probing the biological roles of ordered membrane domains in cells.

Article Details

Volume / Issue Vol. 123, Issue 26
Published June 30, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

K

Katherine M. Stefanski

G

Geoffrey C. Li

Department of Biochemistry, Vanderbilt University School of Medicine

D

Dustin D. Luu

School of Molecular Sciences

K

Kelvin K. Fosu

School of Molecular Sciences, Arizona State University

E

Eduardo Guadarrama

Department of Pharmacology, Feinberg School of Medicine, Northwestern University

J

James M. Hutchison

Department of Pharmacology, Yale University School of Medicine

N

Nilabh Saksena

Department of Biochemistry, Vanderbilt University School of Medicine

Y

Yelyzaveta Zuy

Department of Biochemistry, Vanderbilt University School of Medicine

A

Alexander J. Fisch

Department of Biochemistry, Vanderbilt University School of Medicine

T

Thomas P. Hasaka

Department of Biochemistry, Vanderbilt University School of Medicine

J

Joshua A. Bauer

Department of Biochemistry, Vanderbilt University School of Medicine

A

Alfred L. George

Department of Pharmacology, Northwestern University Feinberg School of Medicine

A

Anne K. Kenworthy

Department of Molecular Physiology and Biological Physics, University of Virginia

W

Wade D. Van Horn

School of Molecular Sciences

C

Charles R. Sanders