Self-assembly of protein superstructures by physical interactions under cytoplasm-like conditions.

Yuxing Yao, Zhiyang Jin, Bill Ling, Dina Malounda, Mikhail G Shapiro

Journal: Biophysical journal 2021;120(13):2701-2709

PMID: 34022233

Abstract

The structure-driven assembly of multimeric protein complexes and the formation of intracellular phase-like protein condensates have been the subject of intense research. However, the assembly of larger superstructures comprising cellular components, such as protein nanoparticles driven by general physical rather than specific biochemical interactions, remains relatively uncharacterized. Here, we use gas vesicles (GVs)-genetically encoded protein nanoparticles that form ordered intracellular clusters-as a model system to study the forces driving multiparticle assembly under cytoplasm-like conditions. Our calculations and experimental results show that the ordered assembly of GVs can be achieved by screening their mutual electrostatic repulsion with electrolytes and creating a crowding force with dissolved macromolecules. The precise balance of these forces results in different packing configurations. Biomacromolecules such as polylysine and DNA are capable of driving GV clustering. These results provide basic insights into how physically driven interactions affect the formation of protein superstructures, offer guidance for manipulating nanoparticle assembly in cellular environments through synthetic biology methods, and inform research on the biotechnology applications of GVs.

Copyright © 2021 Biophysical Society. Published by Elsevier Inc. All rights reserved.

Address: Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California.; Division of Engineering and Applied Science, California Institute of Technology, Pasadena, California.; Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California. Electronic address: [email protected].
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.