Pervasive, conserved secondary structure in highly charged protein regions.

Catherine G Triandafillou, Rosalind Wenshan Pan, Aaron R Dinner, D Allan Drummond

Journal: PLoS computational biology 2023;19(10):e1011565

PMID: 37844070

Abstract

Understanding how protein sequences confer function remains a defining challenge in molecular biology. Two approaches have yielded enormous insight yet are often pursued separately: structure-based, where sequence-encoded structures mediate function, and disorder-based, where sequences dictate physicochemical and dynamical properties which determine function in the absence of stable structure. Here we study highly charged protein regions (>40% charged residues), which are routinely presumed to be disordered. Using recent advances in structure prediction and experimental structures, we show that roughly 40% of these regions form well-structured helices. Features often used to predict disorder-high charge density, low hydrophobicity, low sequence complexity, and evolutionarily varying length-are also compatible with solvated, variable-length helices. We show that a simple composition classifier predicts the existence of structure far better than well-established heuristics based on charge and hydropathy. We show that helical structure is more prevalent than previously appreciated in highly charged regions of diverse proteomes and characterize the conservation of highly charged regions. Our results underscore the importance of integrating, rather than choosing between, structure- and disorder-based approaches.

Copyright: © 2023 Triandafillou et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

Address: Department of Bioengineering, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.; Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, California, United States of America.; Department of Chemistry, University of Chicago, Chicago, Illinois, United States of America.; Department of Biochemistry and Molecular Biology, University of Chicago, Chicago, Illinois, United States of America.; Department of Medicine, Section of Genetic Medicine, The University of Chicago, Chicago, Illinois, United States of America.
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.