Covariation MS uncovers a protein that controls cysteine catabolism
Abstract
Abstract The regulation of metabolic processes by proteins is fundamental to biology and yet is incompletely understood. Here we develop a mass spectrometry (MS)-based approach that leverages genetic diversity to nominate functional relationships between 285 metabolites and 11,868 proteins in living tissues. This method recapitulates protein–metabolite functional relationships mediated by direct physical interactions and local metabolic pathway regulation while nominating 3,542 previously undescribed relationships. With this foundation, we identify a mechanism of regulation over liver cysteine utilization and cholesterol handling, regulated by the poorly characterized protein LRRC58. We show that LRRC58 is the substrate adaptor of an E3 ubiquitin ligase that mediates proteasomal degradation of CDO1, the rate-limiting enzyme of the catabolic shunt of cysteine to taurine 1 . Cysteine abundance regulates LRRC58-mediated CDO1 degradation, and depletion of LRRC58 is sufficient to stabilize CDO1 to drive consumption of cysteine to produce taurine. Taurine has a central role in cholesterol handling, promoting its excretion from the liver 2 , and we show that depletion of LRRC58 in hepatocytes increases cysteine flux to taurine and lowers hepatic cholesterol in mice. Uncovering the mechanism of LRRC58 control over cysteine catabolism exemplifies the utility of covariation MS to identify modes of protein regulation of metabolic processes.
Article Details
Authors (31)
Haopeng Xiao
Martha Ordonez
Emma C. Fink
Taylor A. Covington
Hilina B. Woldemichael
Junyi Chen
Mika Sarkin Jain
Milan H. Rohatgi
Shelley M. Wei
Nils Burger
Muneeb A. Sharif
Julius Jan
Yaoyu Wang
Jonathan J. Petrocelli
Katherine Blackmore
Amanda L. Smythers
Bingsen Zhang
Matthew Gilbert
Hakyung Cheong
Sumeet A. Khetarpal
Arianne Smith
Dina Bogoslavski
Yu Lei
Laura Pontano Vaites
Fiona E. McAllister
Nick Van Bruggen
Katherine A. Donovan
Edward L. Huttlin
Evanna L. Mills
Eric S. Fischer
Edward T. Chouchani