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1.
Protein Sci ; 29(5): 1071-1089, 2020 05.
Artigo em Inglês | MEDLINE | ID: mdl-32022353

RESUMO

Nickel enzymes, present in archaea, bacteria, plants, and primitive eukaryotes are divided into redox and nonredox enzymes and play key functions in diverse metabolic processes, such as energy metabolism and virulence. They catalyze various reactions by using active sites of diverse complexities, such as mononuclear nickel in Ni-superoxide dismutase, glyoxylase I and acireductone dioxygenase, dinuclear nickel in urease, heteronuclear metalloclusters in [NiFe]-carbon monoxide dehydrogenase, acetyl-CoA decarbonylase/synthase and [NiFe]-hydrogenase, and even more complex cofactors in methyl-CoM reductase and lactate racemase. The presence of metalloenzymes in a cell necessitates a tight regulation of metal homeostasis, in order to maintain the appropriate intracellular concentration of nickel while avoiding its toxicity. As well, the biosynthesis and insertion of nickel active sites often require specific and elaborated maturation pathways, allowing the correct metal to be delivered and incorporated into the target enzyme. In this review, the phylogenetic distribution of nickel enzymes will be briefly described. Their tridimensional structures as well as the complexity of their active sites will be discussed. In view of the latest findings on these enzymes, a special focus will be put on the biosynthesis of their active sites and nickel activation of apo-enzymes.


Assuntos
Enzimas/química , Enzimas/metabolismo , Níquel/metabolismo , Biocatálise/efeitos dos fármacos , Domínio Catalítico , Dioxigenases/química , Dioxigenases/metabolismo , Enzimas/biossíntese , Hidrogenase/química , Hidrogenase/metabolismo , Lactoilglutationa Liase/química , Lactoilglutationa Liase/metabolismo , Níquel/química , Níquel/farmacologia , Conformação Proteica , Superóxido Dismutase/química , Superóxido Dismutase/metabolismo , Urease/química , Urease/metabolismo
2.
Chemistry ; 25(67): 15351-15360, 2019 Dec 02.
Artigo em Inglês | MEDLINE | ID: mdl-31486181

RESUMO

In Rhodospirillum rubrum, the maturation of carbon monoxide dehydrogenase (CODH) requires three nickel chaperones, namely RrCooC, RrCooT and RrCooJ. Recently, the biophysical characterisation of the RrCooT homodimer and the X-ray structure of its apo form revealed the existence of a solvent-exposed NiII -binding site at the dimer interface, involving the strictly conserved Cys2. Here, a multifaceted approach that used NMR and X-ray absorption spectroscopies, complemented with structural bio-modelling methodologies, was used to characterise the binding mode of NiII in RrCooT. This study suggests that NiII adopts a square-planar geometry through a N2 S2 coordinating environment that comprises the two thiolate and amidate groups of both Cys2 residues at the dimer interface. The existence of a diamagnetic mononuclear NiII centre with bis-amidate/bis-thiolate ligands, coordinated by a single-cysteine motif, is unprecedented in biology and raises the question of its role in the activation of CODH at the molecular level.


Assuntos
Cisteína/química , Metalochaperonas/química , Níquel/química , Rhodospirillum rubrum/química , Sequência de Aminoácidos , Sítios de Ligação , Cátions Bivalentes/química , Complexos de Coordenação/química , Ligantes , Modelos Moleculares , Nitrogênio/química , Ligação Proteica , Conformação Proteica , Multimerização Proteica , Solventes/química , Enxofre/química , Termodinâmica
3.
J Biol Chem ; 294(19): 7601-7614, 2019 05 10.
Artigo em Inglês | MEDLINE | ID: mdl-30858174

RESUMO

Activation of nickel enzymes requires specific accessory proteins organized in multiprotein complexes controlling metal transfer to the active site. Histidine-rich clusters are generally present in at least one of the metallochaperones involved in nickel delivery. The maturation of carbon monoxide dehydrogenase in the proteobacterium Rhodospirillum rubrum requires three accessory proteins, CooC, CooT, and CooJ, dedicated to nickel insertion into the active site, a distorted [NiFe3S4] cluster coordinated to an iron site. Previously, CooJ from R. rubrum (RrCooJ) has been described as a nickel chaperone with 16 histidines and 2 cysteines at its C terminus. Here, the X-ray structure of a truncated version of RrCooJ, combined with small-angle X-ray scattering data and a modeling study of the full-length protein, revealed a homodimer comprising a coiled coil with two independent and highly flexible His tails. Using isothermal calorimetry, we characterized several metal-binding sites (four per dimer) involving the His-rich motifs and having similar metal affinity (KD = 1.6 µm). Remarkably, biophysical approaches, site-directed mutagenesis, and X-ray crystallography uncovered an additional nickel-binding site at the dimer interface, which binds Ni(II) with an affinity of 380 nm Although RrCooJ was initially thought to be a unique protein, a proteome database search identified at least 46 bacterial CooJ homologs. These homologs all possess two spatially separated nickel-binding motifs: a variable C-terminal histidine tail and a strictly conserved H(W/F)X2HX3H motif, identified in this study, suggesting a dual function for CooJ both as a nickel chaperone and as a nickel storage protein.


Assuntos
Proteínas de Bactérias/química , Proteínas de Transporte/química , Níquel/química , Multimerização Proteica , Rhodospirillum rubrum/química , Motivos de Aminoácidos , Proteínas de Bactérias/genética , Sítios de Ligação , Proteínas de Transporte/genética , Mutagênese Sítio-Dirigida , Rhodospirillum rubrum/genética
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