Direct evidence of acid-driven protein desolvation

F Farzad Hamdi (Department of Integrative Structural Biochemistry, Faculty of Natural Sciences 1─Biosciences Martin-Luther University, Weinbergweg 22, 06120 Halle (Saale), Germany) I Ioannis Skalidis (Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg) I Inken Kaja Schwerin (Institute for Drug Discovery, Leipzig University) J Jaydeep Belapure (Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg) D Dmitry A. Semchonok (Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg) F Fotis L. Kyrilis (Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg) C Christian Tüting (Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg) J Johannes Müller (Museum für Naturkunde, Leibniz-Institut für Evolutions- und Biodiversitätsforschung) G Georg Künze P Panagiotis L. Kastritis

Abstract

Water and its ability to modulate the protonation states of biomolecules govern the physical chemistry of life, dictating their metabolic functions. However, how amino acid protonation alters protein hydration and solubility is an open question since Kuntz and Kauzmann proposed p H -driven protein desolvation in 1974. Here, in a series of high-resolution cryoelectron microscopy structures of a protein complex at different p H values (from p H 9.0 to 3.5), we examined thousands of observable hydration sites. Cryoelectron microscopy data, in agreement with constant-p H molecular dynamics simulations, show that nearly half of protein-bound waters exchanged with the bulk solvent upon acidification, with ~100 waters lost per p H unit per molecule. The loss of waters was most significant around the side chains of glutamate and aspartate residues while specific polar residues, mostly asparagine, anchored persistent waters. A positionally conserved hydration layer was observed across all p H conditions, accounting for 40% of resolved waters. Those waters displayed denser packing than less persistent waters, forming a p H -independent solvation shell. Acid-induced water exchange also displaced bound iron, providing a mechanistic link between solvation and metal release. Our findings demonstrate the core principles of acid-driven protein desolvation, resolving a 50-y-old biochemical hypothesis.

Article Details

Volume / Issue Vol. 123, Issue 10
Published March 10, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

F

Farzad Hamdi

Department of Integrative Structural Biochemistry, Faculty of Natural Sciences 1─Biosciences Martin-Luther University, Weinbergweg 22, 06120 Halle (Saale), Germany

I

Ioannis Skalidis

Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg

I

Inken Kaja Schwerin

Institute for Drug Discovery, Leipzig University

J

Jaydeep Belapure

Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg

D

Dmitry A. Semchonok

Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg

F

Fotis L. Kyrilis

Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg

C

Christian Tüting

Department of Integrative Structural Biochemistry, Institute of Biochemistry and Biotechnology, Martin Luther University Halle-Wittenberg

J

Johannes Müller

Museum für Naturkunde, Leibniz-Institut für Evolutions- und Biodiversitätsforschung

G

Georg Künze

P

Panagiotis L. Kastritis