Metabolite Damage and Damage Control in a Minimal Genome.

Jiusheng Lin, Valérie de Crécy-Lagard, Christopher S Henry, Andrew D Hanson, John I Glass, Oliver Fiehn, Jacob Folz, Inna Kurilyak, Alexander F Yakunin, Greg Brown, Mark A Wilson, Drago Haas, Zaida Luthey-Schulten, Marian Breuer, Steven D Bruner, Claudia Lerma-Ortiz, Kim S Wise, Guillaume A W Beaudoin, Lijie Sun, Lili Huang, Jiayi Sun, Antje M Thamm

Journal: mBio 2022;13(4):e0163022

PMID: 35862786

Abstract

Analysis of the genes retained in the minimized JCVI-Syn3A genome established that systems that repair or preempt metabolite damage are essential to life. Several genes known to have such functions were identified and experimentally validated, including 5-formyltetrahydrofolate cycloligase, coenzyme A (CoA) disulfide reductase, and certain hydrolases. Furthermore, we discovered that an enigmatic YqeK hydrolase domain fused to NadD has a novel proofreading function in NAD synthesis and could double as a MutT-like sanitizing enzyme for the nucleotide pool. Finally, we combined metabolomics and cheminformatics approaches to extend the core metabolic map of JCVI-Syn3A to include promiscuous enzymatic reactions and spontaneous side reactions. This extension revealed that several key metabolite damage control systems remain to be identified in JCVI-Syn3A, such as that for methylglyoxal. Metabolite damage and repair mechanisms are being increasingly recognized. We present here compelling genetic and biochemical evidence for the universal importance of these mechanisms by demonstrating that stripping a genome down to its barest essentials leaves metabolite damage control systems in place. Furthermore, our metabolomic and cheminformatic results point to the existence of a network of metabolite damage and damage control reactions that extends far beyond the corners of it that have been characterized so far. In sum, there can be little room left to doubt that metabolite damage and the systems that counter it are mainstream metabolic processes that cannot be separated from life itself.

Address: Department of Microbiology and Cell Science, University of Floridagrid.15276.37, Gainesville, Florida, USA.; Horticultural Sciences Department, University of Floridagrid.15276.37, Gainesville, Florida, USA.; Food Science and Human Nutrition Department, University of Floridagrid.15276.37, Gainesville, Florida, USA.; J. Craig Venter Institutegrid.469946.0, La Jolla, California, USA.; Chemistry Department, University of Floridagrid.15276.37, Gainesville, Florida, USA.; Maastricht Centre for Systems Biology (MaCSBio), Maastricht Universitygrid.5012.6, Maastricht, The Netherlands.; Department of Chemistry, University of Illinois at Urbana-Champaigngrid.35403.31, Urbana, Illinois, USA.; Department of Biochemistry, University of Nebraska, Lincoln, Nebraska, USA.; Redox Biology Center, University of Nebraska, Lincoln, Nebraska, USA.; Department of Chemical Engineering and Applied Chemistry, University of Torontogrid.17063.33, Toronto, Canada.; Centre for Environmental Biotechnology, School of Natural Sciences, Bangor University, Bangor, United Kingdom.; West Coast Metabolomics Center, UC Davis, Davis, California, USA.; Data Science and Learning, Argonne National Laboratory, Argonne, Illinois, USA.; Consortium for Advanced Science and Engineering, The University of Chicago, Chicago, Illinois, USA.; University of Floridagrid.15276.37 Genetics Institute, Gainesville, Florida, USA.
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