Biomolecular assemblies through weak noncovalent interactions: Higher-order transient structures and their condensate phase

R Roderick MacKinnon (Laboratory of Molecular Neurobiology and Biophysics, HHMI, The Rockefeller University) C Christoph A. Haselwandter (Department of Physics and Astronomy, University of Southern California)

Abstract

Recent data suggest that many membrane proteins spontaneously organize into spatial patterns through weak noncovalent interactions. These weak interactions are protein type-specific and underlie the formation of higher-order transient structures (HOTS), which can function as 10 to 100 nanometer-sized, transient hubs of membrane signaling. We describe the necessary conditions for HOTS assembly to occur, its thermodynamic relationship to biomolecular condensate formation, and potential roles of HOTS in biology stemming from their unique physical properties. Currently, a quantitative understanding of HOTS is limited to membrane proteins, but many observations suggest that HOTS may also be abundant in three-dimensional cellular compartments.

Article Details

Volume / Issue Vol. 123, Issue 27
Published July 07, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (2)

R

Roderick MacKinnon

Laboratory of Molecular Neurobiology and Biophysics, HHMI, The Rockefeller University

C

Christoph A. Haselwandter

Department of Physics and Astronomy, University of Southern California