1
|
Structure, Folding and Stability of Nucleoside Diphosphate Kinases. Int J Mol Sci 2020; 21:ijms21186779. [PMID: 32947863 PMCID: PMC7554756 DOI: 10.3390/ijms21186779] [Citation(s) in RCA: 26] [Impact Index Per Article: 5.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/31/2020] [Revised: 09/09/2020] [Accepted: 09/13/2020] [Indexed: 12/29/2022] Open
Abstract
Nucleoside diphosphate kinases (NDPK) are oligomeric proteins involved in the synthesis of nucleoside triphosphates. Their tridimensional structure has been solved by X-ray crystallography and shows that individual subunits present a conserved ferredoxin fold of about 140 residues in prokaryotes, archaea, eukaryotes and viruses. Monomers are functionally independent from each other inside NDPK complexes and the nucleoside kinase catalytic mechanism involves transient phosphorylation of the conserved catalytic histidine. To be active, monomers must assemble into conserved head to tail dimers, which further assemble into hexamers or tetramers. The interfaces between these oligomeric states are very different but, surprisingly, the assembly structure barely affects the catalytic efficiency of the enzyme. While it has been shown that assembly into hexamers induces full formation of the catalytic site and stabilizes the complex, it is unclear why assembly into tetramers is required for function. Several additional activities have been revealed for NDPK, especially in metastasis spreading, cytoskeleton dynamics, DNA binding and membrane remodeling. However, we still lack the high resolution structural data of NDPK in complex with different partners, which is necessary for deciphering the mechanism of these diverse functions. In this review we discuss advances in the structure, folding and stability of NDPKs.
Collapse
|
2
|
Georgescauld F, Moynié L, Habersetzer J, Cervoni L, Mocan I, Borza T, Harris P, Dautant A, Lascu I. Intersubunit ionic interactions stabilize the nucleoside diphosphate kinase of Mycobacterium tuberculosis. PLoS One 2013; 8:e57867. [PMID: 23526954 PMCID: PMC3589492 DOI: 10.1371/journal.pone.0057867] [Citation(s) in RCA: 11] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/26/2012] [Accepted: 01/27/2013] [Indexed: 01/10/2023] Open
Abstract
Most nucleoside diphosphate kinases (NDPKs) are hexamers. The C-terminal tail interacting with the neighboring subunits is crucial for hexamer stability. In the NDPK from Mycobacterium tuberculosis (Mt) this tail is missing. The quaternary structure of Mt-NDPK is essential for full enzymatic activity and for protein stability to thermal and chemical denaturation. We identified the intersubunit salt bridge Arg80-Asp93 as essential for hexamer stability, compensating for the decreased intersubunit contact area. Breaking the salt bridge by the mutation D93N dramatically decreased protein thermal stability. The mutation also decreased stability to denaturation by urea and guanidinium. The D93N mutant was still hexameric and retained full activity. When exposed to low concentrations of urea it dissociated into folded monomers followed by unfolding while dissociation and unfolding of the wild type simultaneously occur at higher urea concentrations. The dissociation step was not observed in guanidine hydrochloride, suggesting that low concentration of salt may stabilize the hexamer. Indeed, guanidinium and many other salts stabilized the hexamer with a half maximum effect of about 0.1 M, increasing protein thermostability. The crystal structure of the D93N mutant has been solved.
Collapse
Affiliation(s)
- Florian Georgescauld
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
| | - Lucile Moynié
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
| | - Johann Habersetzer
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
| | - Laura Cervoni
- Dipartimento di Scienze Biochimiche “A. Rossi Fanelli”, Università degli Studi “La Sapienza”, Roma, Italy
| | - Iulia Mocan
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
| | - Tudor Borza
- Laboratoire de Chimie Structurale des Macromolécules, CNRS URA 2185, Institut Pasteur, Paris, France
| | - Pernile Harris
- Department of Biology, University of Copenhagen, Copenhagen, Denmark
| | - Alain Dautant
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
- * E-mail: (AD); (IL)
| | - Ioan Lascu
- IBGC, University Bordeaux, Bordeaux, France
- IBGC, CNRS UMR 5095, Bordeaux, France
- * E-mail: (AD); (IL)
| |
Collapse
|
3
|
Steeg PS, Zollo M, Wieland T. A critical evaluation of biochemical activities reported for the nucleoside diphosphate kinase/Nm23/Awd family proteins: opportunities and missteps in understanding their biological functions. NAUNYN-SCHMIEDEBERG'S ARCHIVES OF PHARMACOLOGY 2011; 384:331-9. [PMID: 21611737 PMCID: PMC10153102 DOI: 10.1007/s00210-011-0651-9] [Citation(s) in RCA: 36] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/20/2011] [Accepted: 04/27/2011] [Indexed: 10/18/2022]
|
4
|
Georgescauld F, Sabaté R, Espargaró A, Ventura S, Chaignepain S, Lacombe ML, Lascu I. Aggregation of the neuroblastoma-associated mutant (S120G) of the human nucleoside diphosphate kinase-A/NM23-H1 into amyloid fibrils. Naunyn Schmiedebergs Arch Pharmacol 2011; 384:373-81. [PMID: 21484438 DOI: 10.1007/s00210-011-0628-8] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/26/2010] [Accepted: 03/23/2011] [Indexed: 01/25/2023]
Abstract
The human nucleoside diphosphate (NDP) kinase A, product of the NME1 gene also named NM23-H1, is known as a metastasis suppressor protein. A naturally occurring variant, S120G, identified in neuroblastomas, possesses native three-dimensional structure and enzymatic activity but displays reduced conformational stability and a folding defect with the accumulation of a "molten globule" folding intermediate during refolding in vitro. As such intermediate has been postulated to be involved in amyloid formation, NDP kinase A may serve as a model protein for studying the relationship between folding intermediates and amyloid fibrils. The NDP kinase A S120G was heated in phosphate buffer (pH 7.0). The protein precipitated as amyloid fibrils, as demonstrated by electron microscopy, Congo red, and thioflavin T binding and FTIR spectroscopy. The NDP kinase A S120G, at neutral pH and at moderate temperature experiences a transition towards amyloid fibrils. The aggregation process was faster if seeded by preformed fibrils. The fibrils presented a large proteinase K-resistant core not including residue Gly 120, as shown by mass spectrometry. This suggests that the aggregation process is triggered by the reduced stability of the S120G variant and not by a specific increase in the kinase domain intrinsic aggregation propensity at the place of mutation. This constitutes one of the few reports on a protein involved in cancer biology able to aggregate into amyloid structures under mild conditions.
Collapse
Affiliation(s)
- Florian Georgescauld
- Institut de Biochimie et Génétique Cellulaires, UMR 5095 University Bordeaux-2 and CNRS, 1 rue Camille St Saëns, 33077, Bordeaux cedex, France
| | | | | | | | | | | | | |
Collapse
|
5
|
Mocan I, Georgescauld F, Gonin P, Thoraval D, Cervoni L, Giartosio A, Dabernat-Arnaud S, Crouzet M, Lacombe ML, Lascu I. Protein phosphorylation corrects the folding defect of the neuroblastoma (S120G) mutant of human nucleoside diphosphate kinase A/Nm23-H1. Biochem J 2007; 403:149-56. [PMID: 17155928 PMCID: PMC1828887 DOI: 10.1042/bj20061141] [Citation(s) in RCA: 14] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/10/2023]
Abstract
Human nucleoside diphosphate (NDP) kinase A is a 'house-keeping' enzyme essential for the synthesis of nonadenine nucleoside (and deoxynucleoside) 5'-triphosphate. It is involved in complex cellular regulatory functions including the control of metastatic tumour dissemination. The mutation S120G has been identified in high-grade neuroblastomas. We have shown previously that this mutant has a folding defect: the urea-denatured protein could not refold in vitro. A molten globule folding intermediate accumulated, whereas the wild-type protein folded and associated into active hexamers. In the present study, we report that autophosphorylation of the protein corrected the folding defect. The phosphorylated S120G mutant NDP kinase, either autophosphorylated with ATP as donor, or chemically prosphorylated by phosphoramidate, refolded and associated quickly with high yield. Nucleotide binding had only a small effect. ADP and the non-hydrolysable ATP analogue 5'-adenyly-limido-diphosphate did not promote refolding. ATP-promoted refolding was strongly inhibited by ADP, indicating protein dephosphorylation. Our findings explain why the mutant enzyme is produced in mammalian cells and in Escherichia coli in a soluble form and is active, despite the folding defect of the S120G mutant observed in vitro. We generated an inactive mutant kinase by replacing the essential active-site histidine residue at position 118 with an asparagine residue, which abrogates the autophosphorylation. The double mutant H118N/S120G was expressed in inclusion bodies in E. coli. Its renaturation stops at a folding intermediate and cannot be reactivated by ATP in vitro. The transfection of cells with this double mutant might be a good model to study the cellular effects of folding intermediates.
Collapse
Affiliation(s)
- Iulia Mocan
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
| | - Florian Georgescauld
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
| | - Philippe Gonin
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
| | - Didier Thoraval
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
| | - Laura Cervoni
- †Dipartimento di Scienze Biochimiche ‘A. Rossi Fanelli’ and the Center of Molecular Biology of Consiglio Nazionale delle Ricerche, Università degli Studi ‘La Sapienza’, 00185 Rome, Italy
| | - Anna Giartosio
- †Dipartimento di Scienze Biochimiche ‘A. Rossi Fanelli’ and the Center of Molecular Biology of Consiglio Nazionale delle Ricerche, Università degli Studi ‘La Sapienza’, 00185 Rome, Italy
| | | | - Marc Crouzet
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
| | - Marie-Lise Lacombe
- §Unité 680 INSERM, Faculté de Médecine Pierre et Marie Curie, site Saint-Antoine, 75012 Paris, France
| | - Ioan Lascu
- *Institut de Biochimie et Génétique Cellulaires (UMR 5095), Université Victor Segalen Bordeaux2 and CNRS, 33077 Bordeaux Cedex, France
- To whom correspondence should be addressed (email )
| |
Collapse
|
6
|
Zhou Q, Yang X, Zhu D, Ma L, Zhu W, Sun Z, Yang Q. Double mutant P96S/S120G of Nm23-H1 abrogates its NDPK activity and motility-suppressive ability. Biochem Biophys Res Commun 2007; 356:348-53. [PMID: 17335772 DOI: 10.1016/j.bbrc.2007.02.066] [Citation(s) in RCA: 23] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/13/2007] [Accepted: 02/14/2007] [Indexed: 11/16/2022]
Abstract
The Nm23-H1 gene is a metastasis suppressor gene. However, its biochemical mechanism of suppressing the metastatic potential of cancer cells is still unknown. The previous hypothesis that a histidine protein kinase activity may contributes to the motility-suppressive effect of Nm23-H1 could not explain why the H118F mutant, a kinase-deficient mutant, still had motility-suppressive ability. We conducted a study on the double mutant P96S/S120G of Nm23-H1 and succeeded in introducing the RP-HPLC method in NDPK assay. The results showed that the double mutant P96S/S120G, when expressed in the bacteria, was completely aggregated in inclusion bodies; this mutant abrogated not only its motility-suppressive ability, but also its NDPK activity. Based on previous work and this study, we prompted that the deficiency of motility-suppressive function of S120G, P96S, and P96S/S120G mutants was due to their altered structure, which might deprive Nm23-H1 of most activities including kinase activity or interactions with other proteins.
Collapse
Affiliation(s)
- Qinghua Zhou
- Tianjin Lung Cancer Institute, Tianjin Medical University General Hospital, Tianjin 300052, PR China.
| | | | | | | | | | | | | |
Collapse
|