Filamentation and inhibition of prokaryotic CTP synthase with ligands

Author:

Guo Chenjun1ORCID,Wang Zixuan1ORCID,Liu Ji‐Long123ORCID

Affiliation:

1. School of Life Science and Technology ShanghaiTech University Shanghai China

2. Department of Physiology, Anatomy and Genetics University of Oxford Oxford UK

3. Shanghai Clinical Research and Trial Center Shanghai China

Abstract

AbstractCytidine triphosphate synthase (CTPS) plays a pivotal role in the de novo synthesis of cytidine triphosphate (CTP), a fundamental building block for RNA and DNA that is essential for life. CTPS is capable of directly binding to all four nucleotide triphosphates: adenine triphosphate, uridine triphosphate, CTP, and guanidine triphosphate. Furthermore, CTPS can form cytoophidia in vivo and metabolic filaments in vitro, undergoing regulation at multiple levels. CTPS is considered a potential therapeutic target for combating invasions or infections by viral or prokaryotic pathogens. Utilizing cryo‐electron microscopy, we determined the structure of Escherichia coli CTPS (ecCTPS) filament in complex with CTP, nicotinamide adenine dinucleotide (NADH), and the covalent inhibitor 6‐diazo‐5‐oxo‐ l‐norleucine (DON), achieving a resolution of 2.9 Å. We constructed a phylogenetic tree based on differences in filament‐forming interfaces and designed a variant to validate our hypothesis, providing an evolutionary perspective on CTPS filament formation. Our computational analysis revealed a solvent‐accessible ammonia tunnel upon DON binding. Through comparative structural analysis, we discern a distinct mode of CTP binding of ecCTPS that differs from eukaryotic counterparts. Combining biochemical assays and structural analysis, we determined and validated the synergistic inhibitory effects of CTP with NADH or adenine on CTPS. Our results expand our comprehension of the diverse regulatory aspects of CTPS and lay a foundation for the design of specific inhibitors targeting prokaryotic CTPS.

Funder

Medical Research Council

National Natural Science Foundation of China

Publisher

Wiley

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1. Structural Basis of Bifunctional CTP/dCTP Synthase;Journal of Molecular Biology;2024-10

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