Biologyarticle2026-08-18

Bidirectional AllostericLigand Regulation in a CentralGlycolytic Enzyme

Open access1 citations

Abstract

Abstract Allosteric regulation enables fine-tuned control of enzyme activity in response to cellular signals, yet its molecular basis often remains unclear. Phosphofructokinase-1 (PFK), the highly conserved, rate-limiting glycolytic enzyme, is a paradigm for Monod–Wyman–Changeux allosteric kinetics. However, X-ray crystal structures of bacterial PFK orthologs in distinct ligand-bound states do not show the consistent, concerted structural rearrangements expected for classical “relaxed” and “tense” states, revealing a decades-long disconnect between structure and function. We resolve this paradox by integrating biophysical and computational approaches to show that activator and inhibitor binding to the same allosteric pocket differentially reweight the conformational ensemble ofEscherichia coli PFK. Activator binding enriches conformational substates that preorganize the catalytic site, whereas inhibitor binding upweights apo-like, catalytically incompetent substates. These findings establish an ensemble-based mechanism for PFK regulation and provide an energetic framework for understanding the expanded allosteric architecture of eukaryotic PFK orthologs.

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View paper (DOI)Open access versionOpenAlexJournal of the American Chemical SocietyPublished 2026-08-18

Authors: Belen Sundberg, Chenlin Lu, Malcolm L. Wells, Kyle C. Weber, Zhen Gong, Anum Glasgow

Institutions: Columbia University, University of Missouri