Molecular landscape of the fungal plasma membrane and implications for antifungal action
Abstract
Abstract Fungal plasma membrane proteins represent key therapeutic targets for antifungal agents, yet their native structure and spatial distribution remain poorly characterized. Herein, we employ an integrative approach to investigate the organization of plasma membrane protein complexes in Candida glabrata, focusing on two abundant and essential membrane proteins, the β-(1,3)-glucan synthase (GS) and the proton pump Pma1. We show that treatment with caspofungin, an echinocandin antifungal that targets GS, disrupts the native distribution of membrane protein complexes and alters membrane biophysical properties. Perturbation of the sphingolipid biosynthesis further modulates drug susceptibility, revealing that the lipid environment plays an integral role in membrane protein organization and GS-echinocandin interactions. Our work highlights the importance of characterizing membrane proteins in their native context to understand their functions and inform the development of novel antifungal therapies.
Article Details
Authors (19)
Jennifer Jiang
Mikhail V. Keniya
Anusha Puri
Xueying Zhan
Jeff Cheng
Huan Wang
Gigi Lin
Yun-Kyung Lee
Division of Life Sciences, Department of Cell Biology and Neuroscience, School of Arts and Sciences, Rutgers, The State University of New Jersey
Nora Jaber
Division of Life Sciences, Department of Cell Biology and Neuroscience, School of Arts and Sciences, Rutgers, The State University of New Jersey
Caifeng Zhao
Cynthia Pang
Yasmine Hassoun
Haiyan Zheng
Erika Shor
Zheng Shi
Sang-Hyuk Lee
Min Xu
David S. Perlin
Wei Dai
Université Paris Cité, Institut de Physique du Globe de Paris, CNRS