Deciphering the Cofilin Oligomers via Intermolecular Disulfide Bond Formation: A Coarse-Grained Molecular Dynamics Approach to Understanding Cofilin's Regulation on Actin Filaments.

Margaret S Cheung, Chengxuan Li, Ting-Yi Wei, Min-Yeh Tsai

Journal: The journal of physical chemistry. B 2024;128(19):4590-4601

PMID: 38701111

Abstract

Cofilin, a key actin-binding protein, orchestrates the dynamics of the actomyosin network through its actin-severing activity and by promoting the recycling of actin monomers. Recent experiments suggest that cofilin forms functionally distinct oligomers via thiol post-translational modifications (PTMs) that promote actin nucleation and assembly. Despite these advances, the structural conformations of cofilin oligomers that modulate actin activity remain elusive because there are combinatorial ways to oxidize thiols in cysteines to form disulfide bonds rapidly. This study employs molecular dynamics simulations to investigate human cofilin 1 as a case study for exploring cofilin dimers via disulfide bond formation. Utilizing a biasing scheme in simulations, we focus on analyzing dimer conformations conducive to disulfide bond formation. Additionally, we explore potential PTMs arising from the examined conformational ensemble. Using the free energy profiling, our simulations unveil a range of probable cofilin dimer structures not represented in current Protein Data Bank entries. These candidate dimers are characterized by their distinct population distributions and relative free energies. Of particular note is a dimer featuring an interface between cysteines 139 and 147 residues, which demonstrates stable free energy characteristics and intriguingly symmetrical geometry. In contrast, the experimentally proposed dimer structure exhibits a less stable free energy profile. We also evaluate frustration quantification based on the energy landscape theory in the protein-protein interactions at the dimer interfaces. Notably, the 39-39 dimer configuration emerges as a promising candidate for forming cofilin tetramers, as substantiated by frustration analysis. Additionally, docking simulations with actin filaments further evaluate the stability of these cofilin dimer-actin complexes. Our findings thus offer a computational framework for understanding the role of thiol PTM of cofilin proteins in regulating oligomerization, and the subsequent cofilin-mediated actin dynamics in the actomyosin network.

Address: Department of Physics, University of Washington, Seattle, Washington 98195, United States.; Center for Theoretical Biological Physics, Rice University, Houston, Texas 77005, United States.; Department of Chemistry and Biochemistry, National Chung Cheng University, Minhsiung, Chiayi 621301, Taiwan.; Department of Physics, University of Washington, Seattle, Washington 98195, United States.; Center for Theoretical Biological Physics, Rice University, Houston, Texas 77005, United States.; Pacific Northwest National Laboratory, Seattle, Washington 98109, United States.; Department of Chemistry and Biochemistry, National Chung Cheng University, Minhsiung, Chiayi 621301, Taiwan.; Division of Physics, National Center for Theoretical Sciences, National Taiwan University, Taipei 106319, Taiwan.

Link outs

Subscription / membership required

Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.