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1.
J Phys Chem Lett ; 12(26): 6095-6101, 2021 Jul 08.
Artigo em Inglês | MEDLINE | ID: mdl-34170697

RESUMO

Human isocitrate dehydrogenase (IDH1) and its cancer-associated variant (IDH1 R132H) are rendered electroactive through coconfinement with a rapid NADP(H) recycling enzyme (ferredoxin-NADP+ reductase) in nanopores formed within an indium tin oxide electrode. Efficient coupling to localized NADP(H) enables IDH activity to be energized, controlled, and monitored in real time, leading directly to a thermodynamic redox landscape for accumulation of the oncometabolite, 2-hydroxyglutarate, that would occur in biological environments when the R132H variant is present. The technique enables time-resolved, in situ measurements of the kinetics of binding and dissociation of inhibitory drugs.


Assuntos
Enzimas , Isocitrato Desidrogenase/genética , Isocitrato Desidrogenase/metabolismo , Mutação , Nanotecnologia/instrumentação , Neoplasias/genética , Eletrodos , Humanos , Cinética , Neoplasias/enzimologia , Oxirredução , Termodinâmica
2.
Biosci Rep ; 39(9)2019 09 30.
Artigo em Inglês | MEDLINE | ID: mdl-31431515

RESUMO

Human NAD(P)H quinone oxidoreductase (DT-diaphorase, NQO1) exhibits negative cooperativity towards its potent inhibitor, dicoumarol. Here, we addressed the hypothesis that the effects of the two cancer-associated polymorphisms (p.R139W and p.P187S) may be partly mediated by their effects on inhibitor binding and negative cooperativity. Dicoumarol stabilized both variants and bound with much higher affinity for p.R139W than p.P187S. Both variants exhibited negative cooperativity towards dicoumarol; in both cases, the Hill coefficient (h) was approximately 0.5 and similar to that observed with the wild-type protein. NQO1 was also inhibited by resveratrol and by nicotinamide. Inhibition of NQO1 by resveratrol was approximately 10,000-fold less strong than that observed with the structurally similar enzyme, NRH quinine oxidoreductase 2 (NQO2). The enzyme exhibited non-cooperative behaviour towards nicotinamide, whereas resveratrol induced modest negative cooperativity (h = 0.85). Nicotinamide stabilized wild-type NQO1 and p.R139W towards thermal denaturation but had no detectable effect on p.P187S. Resveratrol destabilized the wild-type enzyme and both cancer-associated variants. Our data suggest that neither polymorphism exerts its effect by changing the enzyme's ability to exhibit negative cooperativity towards inhibitors. However, it does demonstrate that resveratrol can inhibit NQO1 in addition to this compound's well-documented effects on NQO2. The implications of these findings for molecular pathology are discussed.


Assuntos
Estabilidade Enzimática/efeitos dos fármacos , NAD(P)H Desidrogenase (Quinona)/genética , Neoplasias/genética , Quinona Redutases/genética , Dicumarol/química , Dicumarol/farmacologia , Humanos , Cinética , NAD(P)H Desidrogenase (Quinona)/antagonistas & inibidores , NAD(P)H Desidrogenase (Quinona)/química , Neoplasias/química , Neoplasias/tratamento farmacológico , Neoplasias/enzimologia , Niacinamida/química , Niacinamida/farmacologia , Polimorfismo Genético , Ligação Proteica , Quinona Redutases/antagonistas & inibidores , Quinona Redutases/química
3.
Chembiochem ; 20(22): 2841-2849, 2019 11 18.
Artigo em Inglês | MEDLINE | ID: mdl-31165578

RESUMO

NAD(P)H quinone oxidoreductase-1 (NQO1) is a homodimeric protein that acts as a detoxifying enzyme or as a chaperone protein. Dicourmarol interacts with NQO1 at the NAD(P)H binding site and can both inhibit enzyme activity and modulate the interaction of NQO1 with other proteins. We show that the binding of dicoumarol and related compounds to NQO1 generates negative cooperativity between the monomers. This does not occur in the presence of the reducing cofactor, NAD(P)H, alone. Alteration of Gly150 (but not Gly149 or Gly174) abolished the dicoumarol-induced negative cooperativity. Analysis of the dynamics of NQO1 with the Gaussian network model indicates a high degree of collective motion by monomers and domains within NQO1. Ligand binding is predicted to alter NQO1 dynamics both proximal to the ligand binding site and remotely, close to the second binding site. Thus, drug-induced modulation of protein motion might contribute to the biological effects of putative inhibitors of NQO1.


Assuntos
Regulação Alostérica/efeitos dos fármacos , Dicumarol/farmacologia , Inibidores Enzimáticos/farmacologia , NAD(P)H Desidrogenase (Quinona)/antagonistas & inibidores , Substituição de Aminoácidos , Domínio Catalítico , Linhagem Celular Tumoral , Dicumarol/metabolismo , Inibidores Enzimáticos/metabolismo , Humanos , Ligantes , NAD(P)H Desidrogenase (Quinona)/genética , NAD(P)H Desidrogenase (Quinona)/metabolismo , Ligação Proteica , Proteína Supressora de Tumor p53/metabolismo
4.
Biosci Rep ; 39(1)2019 01 31.
Artigo em Inglês | MEDLINE | ID: mdl-30518535

RESUMO

NAD(P)H quinone oxidoreductase 1 (NQO1) catalyses the two electron reduction of quinones and a wide range of other organic compounds. Its physiological role is believed to be partly the reduction of free radical load in cells and the detoxification of xenobiotics. It also has non-enzymatic functions stabilising a number of cellular regulators including p53. Functionally, NQO1 is a homodimer with two active sites formed from residues from both polypeptide chains. Catalysis proceeds via a substituted enzyme mechanism involving a tightly bound FAD cofactor. Dicoumarol and some structurally related compounds act as competitive inhibitors of NQO1. There is some evidence for negative cooperativity in quinine oxidoreductases which is most likely to be mediated at least in part by alterations to the mobility of the protein. Human NQO1 is implicated in cancer. It is often over-expressed in cancer cells and as such is considered as a possible drug target. Interestingly, a common polymorphic form of human NQO1, p.P187S, is associated with an increased risk of several forms of cancer. This variant has much lower activity than the wild-type, primarily due to its substantially reduced affinity for FAD which results from lower stability. This lower stability results from inappropriate mobility of key parts of the protein. Thus, NQO1 relies on correct mobility for normal function, but inappropriate mobility results in dysfunction and may cause disease.


Assuntos
Dicumarol/química , Inibidores Enzimáticos/química , Flavina-Adenina Dinucleotídeo/química , NAD(P)H Desidrogenase (Quinona)/química , Neoplasias/enzimologia , Domínio Catalítico , Dicumarol/farmacologia , Inibidores Enzimáticos/farmacologia , Estabilidade Enzimática , Flavina-Adenina Dinucleotídeo/metabolismo , Expressão Gênica , Humanos , Modelos Moleculares , Mutação , NAD(P)H Desidrogenase (Quinona)/genética , NAD(P)H Desidrogenase (Quinona)/metabolismo , Neoplasias/tratamento farmacológico , Neoplasias/genética , Neoplasias/patologia , Ligação Proteica , Conformação Proteica em alfa-Hélice , Conformação Proteica em Folha beta , Domínios e Motivos de Interação entre Proteínas , Multimerização Proteica
5.
Methods Enzymol ; 599: 387-407, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29746247

RESUMO

A suite of dynamic electrochemical techniques known as protein film electrochemistry (PFE) offers important insight into the roles of active sites in enzymes, including properties of electron-transfer centers (individually or collectively), rates and dependences of catalytic electron transport, and binding and dissociation of inhibitors. In this chapter, we explain how PFE is used to investigate the properties of FeS clusters-centers lacking distinctive or convenient spectroscopic signatures that are often very sensitive to O2. We see that PFE allows simultaneous detection and control of the reactions of individual FeS clusters, and measurement of their relaying efficiency in long-range electron transfer.


Assuntos
Bactérias/enzimologia , Técnicas Eletroquímicas/métodos , Proteínas Ferro-Enxofre/química , Bactérias/química , Domínio Catalítico , Técnicas Eletroquímicas/instrumentação , Transporte de Elétrons , Desenho de Equipamento , Hidrogenação , Cinética , Modelos Moleculares , Oxirredutases/química , Prótons
6.
J Am Chem Soc ; 138(46): 15227-15233, 2016 11 23.
Artigo em Inglês | MEDLINE | ID: mdl-27776209

RESUMO

Protein film electrochemistry (PFE) has been used to study the assembly of the complex 6Fe active site of [FeFe]-hydrogenases (known as the H-cluster) from its precursors-the [4Fe-4S] domain that is already coordinated within the host, and the 2Fe domain that is presented as a synthetic water-soluble complex stabilized by an additional CO. Not only does PFE allow control of redox states via the electrode potential but also the immobilized state of the enzyme facilitates control of extremely low concentrations of the 2Fe complex. Results for two enzymes, CrHydA1 from Chlamydomonas reinhardtii and CpI from Clostridium pasteurianum, are very similar, despite large differences in size and structure. Assembly begins with very tight binding of the 34-valence electron 2Fe complex to the apo-[4Fe-4S] enzyme, well before the rate-determining step. The precursor is trapped under highly reducing conditions (<-0.5 V vs SHE) that prevent fusion of the [4Fe-4S] and 2Fe domains (via cysteine-S) since the immediate product would be too electron-rich. Relaxing this condition allows conversion to the active H-cluster. The intramolecular steps are relevant to the final stage of biological H-cluster maturation.


Assuntos
Técnicas Eletroquímicas , Hidrogenase/química , Hidrogenase/metabolismo , Proteínas Ferro-Enxofre/química , Proteínas Ferro-Enxofre/metabolismo , Domínio Catalítico , Chlamydomonas reinhardtii/enzimologia
7.
Curr Drug Targets ; 17(13): 1506-14, 2016.
Artigo em Inglês | MEDLINE | ID: mdl-26721407

RESUMO

NAD(P)H: quinone oxidoreductase 1 (NQO1) is an antioxidant and detoxifying enzyme involved in the two-electron reduction of a wide variety of quinones. As a non-enzymatic function, it is involved in the stabilization of several tumour suppressors such as p53, p33 and p73&#945;. NQO1 is overexpressed in several types of tumours, and two common polymorphisms are associated with increased cancer risk, making NQO1 a potential target for new cancer treatments. Here we review the structural and enzymological properties of NQO1, as well as its roles in cancer development and treatment. Particularly, we focus on recent developments on the understanding of the molecular basis leading to loss-of-function in cancer-associated polymorphisms, and propose new approaches to target these molecular defects to develop new pharmacological agents to rescue them. We will focus on pharmacological therapies aimed at correcting the abnormal properties of polymorphic proteins (such as protein stability and dynamics) and modulating intracellular factors leading to loss-of-function (such as accelerated proteasomal degradation).


Assuntos
Antineoplásicos/farmacologia , NAD(P)H Desidrogenase (Quinona)/genética , Neoplasias/tratamento farmacológico , Animais , Antioxidantes/metabolismo , Desenho de Fármacos , Predisposição Genética para Doença , Humanos , Terapia de Alvo Molecular , NAD(P)H Desidrogenase (Quinona)/metabolismo , Neoplasias/genética , Neoplasias/patologia , Polimorfismo Genético
8.
Biochim Biophys Acta ; 1842(11): 2163-73, 2014 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-25179580

RESUMO

NAD(P)H quinone oxidoreductase 1 is involved in antioxidant defence and protection from cancer, stabilizing the apoptosis regulator p53 towards degradation. Here, we studied the enzymological, biochemical and biophysical properties of two cancer-associated variants (p.R139W and p.P187S). Both variants (especially p.187S) have lower thermal stability and greater susceptibility to proteolysis compared to the wild-type. p.P187S also has reduced activity due to a lower binding affinity for the FAD cofactor as assessed by activity measurements and direct titrations. Native gel electrophoresis and dynamic light scattering also suggest that p.P187S has a higher tendency to populate unfolded states under native conditions. Detailed thermal stability studies showed that all variants irreversibly denature causing dimer dissociation, while addition of FAD restores the stability of the polymorphic forms to wild-type levels. The kinetic destabilization induced by polymorphisms as well as the kinetic protection exerted by FAD was confirmed by measuring denaturation kinetics at temperatures close to physiological. Our data suggest that the main molecular mechanisms associated with these cancer-related variants are their low binding affinity for FAD and/or kinetic instability. Thus, pharmacological chaperones may be useful in the treatment of patients bearing these polymorphisms.

9.
Bioorg Chem ; 39(3): 120-6, 2011 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-21474160

RESUMO

Galactokinase catalyses the phosphorylation of galactose at the expense of ATP. Like other members of the GHMP family of kinases it is postulated to function through an active site base mechanism in which Asp-186 abstracts a proton from galactose. This asparate residue was altered to alanine and to asparagine by site-directed mutagenesis of the corresponding gene. This resulted in variant enzyme with no detectable galactokinase activity. Alteration of Arg-37, which lies adjacent to Asp-186 and is postulated to assist the catalytic base, to lysine resulted in an active enzyme. However, alteration of this residue to glutamate abolished activity. All the variant enzymes, except the arginine to lysine substitution, were structurally unstable (as judged by native gel electrophoresis in the presence of urea) compared to the wild type. This suggests that the lack of activity results from this structural instability, in addition to any direct effects on the catalytic mechanism. Computational estimations of the pK(a) values of the arginine and aspartate residues, suggest that Arg-37 remains protonated throughout the catalytic cycle whereas Asp-186 has an abnormally high pK(a) value (7.18). Quantum mechanics/molecular mechanics (QM/MM) calculations suggest that Asp-186 moves closer to the galactose molecule during catalysis. The experimental and theoretical studies presented here argue for a mechanism in which the C(1)-OH bond in the sugar is weakened by the presence of Asp-186 thus facilitating nucleophilic attack by the oxygen atom on the γ-phosphorus of ATP.


Assuntos
Aminoácidos/metabolismo , Domínio Catalítico/genética , Galactoquinase/metabolismo , Mutagênese Sítio-Dirigida , Trifosfato de Adenosina/metabolismo , Sítios de Ligação/fisiologia , Biocatálise , Escherichia coli/enzimologia , Galactosemias/genética , Humanos , Modelos Moleculares , Conformação Proteica , Prótons , Especificidade por Substrato
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