Global analysis of protein degradation reveals instability of diverse regulators in <i>Escherichia coli</i>

E Elliot J. MacKrell (Division of Chemistry and Chemical Engineering, California Institute of Technology) B Brett Lomenick (Proteome Exploration Laboratory, Beckman Institute, California Institute of Technology) Y Yanping Qiu (Division of Biology and Biological Engineering, California Institute of Technology) H Hannah Jeckel (Division of Biology and Biological Engineering, California Institute of Technology) J Jeff Jones (Proteome Exploration Laboratory, Beckman Institute, California Institute of Technology) T Tsui-fen Chou D David A. Tirrell (Division of Chemistry and Chemical Engineering, California Institute of Technology)

Abstract

Regulated protein degradation underlies the timely execution of essential gene expression programs in bacteria. Here, we deployed time-resolved chemoproteomics, text mining of the PubMed and EcoCyc knowledge bases, and machine learning classification to identify proteolytic regulation in exponential and stationary phase Escherichia coli cultures. We experimentally validated the instability of diverse homeostatic and stress response regulators, including the principal cyclic-di-GMP phosphodiesterase PdeH, the N-end rule substrate chaperone ClpS, and all four A-type domain iron–sulfur cluster carriers, IscA, ErpA, NfuA, and SufA. Mutagenesis of the PdeH N-terminal extension abolished ClpXP recognition, thereby impairing stationary phase depletion of PdeH and altering macrocolony biofilm surface morphology. Unstable proteins synthesized in stationary phase such as the morphology regulator BolA, RNA polymerase ω subunit, and the biofilm regulator BssR were implicated in quiescence. Finally, machine learning–assisted substrate identification revealed Lon-mediated degradation of two opposing key regulators of surface adhesion, the RpoS antagonist FliZ and the major biofilm regulator CsgD, suggesting proteolysis may hasten transitions between motility and sessility. Together, these results highlight the role of regulated proteolysis in driving physiological adaptation for this model organism.

Article Details

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

Authors (7)

E

Elliot J. MacKrell

Division of Chemistry and Chemical Engineering, California Institute of Technology

B

Brett Lomenick

Proteome Exploration Laboratory, Beckman Institute, California Institute of Technology

Y

Yanping Qiu

Division of Biology and Biological Engineering, California Institute of Technology

H

Hannah Jeckel

Division of Biology and Biological Engineering, California Institute of Technology

J

Jeff Jones

Proteome Exploration Laboratory, Beckman Institute, California Institute of Technology

T

Tsui-fen Chou

D

David A. Tirrell

Division of Chemistry and Chemical Engineering, California Institute of Technology