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dc.contributor.authorTossounian, Maria-Armineh-
dc.contributor.authorHristov, Stefan Denchev-
dc.contributor.authorSemelak, Jonathan Alexis-
dc.contributor.authorYu, Bess Yi Kun-
dc.contributor.authorBaczynska, Maria-
dc.contributor.authorZhao, Yuhan-
dc.contributor.authorEstrin, Darío Ariel-
dc.contributor.authorTrujillo, Madia-
dc.contributor.authorFilonenko, Valeriy-
dc.contributor.authorGouge, Jerome-
dc.contributor.authorGout, Iván-
dc.date.accessioned2026-03-26T16:22:00Z-
dc.date.available2026-03-26T16:22:00Z-
dc.date.issued2023-
dc.identifier.citationTossounian M, Hristov S, Semelak J y otros. A Unique Mode of Coenzyme A Binding to the Nucleotide Binding Pocket of Human Metastasis Suppressor NME1. International Journal of Molecular Sciences [en línea]. 2023;24(11) 17 p.es
dc.identifier.urihttps://hdl.handle.net/20.500.12008/54159-
dc.description.abstractCoenzyme A (CoA) is a key cellular metabolite which participates in diverse metabolic pathways, regulation of gene expression and the antioxidant defense mechanism. Human NME1 (hNME1), which is a moonlighting protein, was identified as a major CoA-binding protein. Biochemical studies showed that hNME1 is regulated by CoA through both covalent and non-covalent binding, which leads to a decrease in the hNME1 nucleoside diphosphate kinase (NDPK) activity. In this study, we expanded the knowledge on previous findings by focusing on the non-covalent mode of CoA binding to the hNME1. With X-ray crystallography, we solved the CoA bound structure of hNME1 (hNME1-CoA) and determined the stabilization interactions CoA forms within the nucleotide-binding site of hNME1. A hydrophobic patch stabilizing the CoA adenine ring, while salt bridges and hydrogen bonds stabilizing the phosphate groups of CoA were observed. With molecular dynamics studies, we extended our structural analysis by characterizing the hNME1-CoA structure and elucidating possible orientations of the pantetheine tail, which is absent in the X-ray structure due to its flexibility. Crystallographic studies suggested the involvement of arginine 58 and threonine 94 in mediating specific interactions with CoA. Site-directed mutagenesis and CoA-based affinity purifications showed that arginine 58 mutation to glutamate (R58E) and threonine 94 mutation to aspartate (T94D) prevent hNME1 from binding to CoA. Overall, our results reveal a unique mode by which hNME1 binds CoA, which differs significantly from that of ADP binding: the α- and β-phosphates of CoA are oriented away from the nucleotide-binding site, while 3'-phosphate faces catalytic histidine 118 (H118). The interactions formed by the CoA adenine ring and phosphate groups contribute to the specific mode of CoA binding to hNME1.es
dc.format.extent17 p.es
dc.format.mimetypeapplication/pdfes
dc.language.isoenes
dc.publisherMDPIes
dc.relation.ispartofInternational Journal of Molecular Sciences. 2023;24(11)es
dc.rightsLas obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)es
dc.subjectCoAlationes
dc.subjectNDPK-A structurees
dc.subjectNM23-H1es
dc.subjectNME1es
dc.subjectX-ray crystallographyes
dc.subjectCoenzyme Aes
dc.subjectMetastasis suppressores
dc.subjectMolecular dynamicses
dc.subjectNucleotide bindinges
dc.subjectProtein-metabolite regulationes
dc.subject.otherADENINAes
dc.subject.otherARGININAes
dc.subject.otherSITIOS DE UNIÓNes
dc.subject.otherCOENZIMA Aes
dc.subject.otherCRISTALOGRAFÍA POR RAYOS Xes
dc.subject.otherHUMANOSes
dc.subject.otherNUCLEÓSIDO DIFOSFATO QUINASAS NM23es
dc.subject.otherGENÉTICAes
dc.subject.otherNUCLEÓTIDOSes
dc.subject.otherTREONINAes
dc.titleA Unique Mode of Coenzyme A Binding to the Nucleotide Binding Pocket of Human Metastasis Suppressor NME1es
dc.typeArtículoes
dc.contributor.filiacionTossounian Maria-Armineh, University College London (Reino Unido). Department of Structural and Molecular Biology-
dc.contributor.filiacionHristov Stefan Denchev, University College London (Reino Unido). Department of Structural and Molecular Biology-
dc.contributor.filiacionSemelak Jonathan Alexis, Consejo Nacional de Investigaciones Científicas y Técnicas (Argentina). Instituto de Química Física de los Materiales, Medioambiente y Energía-
dc.contributor.filiacionYu Bess Yi Kun, University College London (Reino Unido). Department of Structural and Molecular Biology-
dc.contributor.filiacionBaczynska Maria, University College London (Reino Unido). Department of Structural and Molecular Biology-
dc.contributor.filiacionZhao Yuhan, University College London (Reino Unido). Department of Structural and Molecular Biology-
dc.contributor.filiacionEstrin Darío Ariel, Consejo Nacional de Investigaciones Científicas y Técnicas (Argentina). Instituto de Química Física de los Materiales, Medioambiente y Energía-
dc.contributor.filiacionTrujillo Madia, Universidad de la República (Uruguay). Facultad de Medicina. Departamento de Bioquímica-
dc.contributor.filiacionFilonenko Valeriy, National Academy of Sciences of Ukraine (Ucrania). Institute of Molecular Biology and Genetics-
dc.contributor.filiacionGouge Jerome, University of London (Reino Unido). Birkbeck College, Institute of Structural and Molecular Biology-
dc.contributor.filiacionGout Iván, National Academy of Sciences of Ukraine (Ucrania). Institute of Molecular Biology and Genetics-
dc.rights.licenceLicencia Creative Commons Atribución (CC - By 4.0)es
dc.identifier.doi10.3390/ijms24119359-
dc.identifier.eissn1422-0067-
Aparece en las colecciones: Publicaciones Académicas y Científicas - Facultad de Medicina

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