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1.
Biochemistry (Mosc) ; 89(3): 462-473, 2024 Mar.
Article de Anglais | MEDLINE | ID: mdl-38648766

RÉSUMÉ

Structural organization of HIV-1 integrase is based on a tetramer formed by two protein dimers. Within this tetramer, the catalytic domain of one subunit of the first dimer interacts with the N-terminal domain of the second dimer subunit. It is the tetrameric structure that allows both ends of the viral DNA to be correctly positioned relative to the cellular DNA and to realize catalytic functions of integrase, namely 3'-processing and strand transfer. However, during the HIV-1 replicative cycle, integrase is responsible not only for the integration stage, it is also involved in reverse transcription and is necessary at the stage of capsid formation of the newly formed virions. It has been suggested that HIV-1 integrase is a structurally dynamic protein and its biological functions depend on its structure. Accordingly, studying interactions between the domains of integrase that provide its tetrameric structure is important for understanding its multiple functions. In this work, we investigated the role of three amino acids of the catalytic domain, I182, R187, and K188, located in the contact region of two integrase dimers in the tetramer structure, in reverse transcription and integration. It has been shown that the R187 residue is extremely important for formation of the correct integrase structure, which is necessary at all stages of its functional activity. The I182 residue is necessary for successful integration and is not important for reverse transcription, while the K188 residue, on the contrary, is involved in formation of the integrase structure, which is important for the effective reverse transcription.


Sujet(s)
Domaine catalytique , Intégrase du VIH , VIH-1 (Virus de l'Immunodéficience Humaine de type 1) , Transcription inverse , Intégration virale , Intégrase du VIH/métabolisme , Intégrase du VIH/composition chimique , Intégrase du VIH/génétique , VIH-1 (Virus de l'Immunodéficience Humaine de type 1)/enzymologie , Humains
2.
Biomolecules ; 13(6)2023 05 31.
Article de Anglais | MEDLINE | ID: mdl-37371496

RÉSUMÉ

The biogenic polyamines, spermidine (Spd) and spermine (Spm), are present at millimolar concentrations in all eukaryotic cells, where they participate in the regulation of vitally important cellular functions. Polyamine analogs and derivatives are a traditional and important instrument for the investigation of the cellular functions of polyamines, enzymes of their metabolism, and the regulation of the biosynthesis of antizyme-a key downregulator of polyamine homeostasis. Here, we describe convenient gram-scale syntheses of a set of C-methylated analogs of Spd. The biochemical properties of these compounds and the possibility for the regulation of their activity by moving a methyl group along the polyamine backbone and by changing the stereochemistry of the chiral center(s) are discussed.


Sujet(s)
Polyamines biogènes , Spermidine , Polyamines/métabolisme , Spermine/métabolisme , Homéostasie
3.
Int J Mol Sci ; 23(9)2022 Apr 21.
Article de Anglais | MEDLINE | ID: mdl-35563006

RÉSUMÉ

The polyamines, spermine (Spm) and spermidine (Spd), are important for cell growth and function. Their homeostasis is strictly controlled, and a key downregulator of the polyamine pool is the polyamine-inducible protein, antizyme 1 (OAZ1). OAZ1 inhibits polyamine uptake and targets ornithine decarboxylase (ODC), the rate-limiting enzyme of polyamine biosynthesis, for proteasomal degradation. Here we report, for the first time, that polyamines induce dimerization of mouse recombinant full-length OAZ1, forming an (OAZ1)2-Polyamine complex. Dimerization could be modulated by functionally active C-methylated spermidine mimetics (MeSpds) by changing the position of the methyl group along the Spd backbone-2-MeSpd was a poor inducer as opposed to 1-MeSpd, 3-MeSpd, and Spd, which were good inducers. Importantly, the ability of compounds to inhibit polyamine uptake correlated with the efficiency of the (OAZ1)2-Polyamine complex formation. Thus, the (OAZ1)2-Polyamine complex may be needed to inhibit polyamine uptake. The efficiency of polyamine-induced ribosomal +1 frameshifting of OAZ1 mRNA could also be differentially modulated by MeSpds-2-MeSpd was a poor inducer of OAZ1 biosynthesis and hence a poor downregulator of ODC activity unlike the other MeSpds. These findings offer new insight into the OAZ1-mediated regulation of polyamine homeostasis and provide the chemical tools to study it.


Sujet(s)
Polyamines , Spermidine , Animaux , Dimérisation , Décalage ribosomique , Souris , Ornithine decarboxylase/métabolisme , Polyamines/composition chimique , Polyamines/métabolisme , Polyamines/pharmacologie , Protéines , Spermidine/composition chimique , Spermidine/métabolisme , Spermidine/pharmacologie
4.
Bioorg Med Chem ; 28(7): 115378, 2020 04 01.
Article de Anglais | MEDLINE | ID: mdl-32089391

RÉSUMÉ

A set of AT-specific fluorescent dimeric bisbenzimidazoles DBPA(n) with linkers of different lengths bound to DNA in the minor groove were synthesized and their genetic, virological, and biochemical studies were performed. The DBPA(n) were shown to be effective inhibitors of the histon-like protein H-NS, a regulator of the DNA transcription factor, as well as of the Aliivibrio logei Quorum Sensing regulatory system in E. coli cells. Their antiviral activity was tested in model cell lines infected with herpes simplex virus type I. Also, it was found that DBPA(n) could inhibit catalytic activities of HIV-1 integrase at low micromolar concentrations. All of the dimeric bisbenzimidazoles DBPA(n) manifested fluorescent properties, were well soluble in water, nontoxic up to concentrations of 200 µM, and could penetrate into nuclei followed by binding to DNA.


Sujet(s)
Bisbenzimide/composition chimique , Bisbenzimide/pharmacologie , ADN/composition chimique , Aliivibrio/métabolisme , Antibactériens/pharmacologie , Protéines bactériennes/antagonistes et inhibiteurs , Séquence nucléotidique , ADN/génétique , Conception de médicament , Escherichia coli/métabolisme , Colorants fluorescents , Intégrase du VIH , Inhibiteurs de l'intégrase du VIH/pharmacologie , Ligands , Structure moléculaire , Pyrroles , Détection du quorum/physiologie , Relation structure-activité
5.
Nanomedicine ; 12(8): 2405-2413, 2016 11.
Article de Anglais | MEDLINE | ID: mdl-27456163

RÉSUMÉ

Benzophenone-uracil (BPU) scaffold-derived candidate compounds are efficient non-nucleoside reverse transcriptase inhibitors (NNRTI) with extremely low solubility in water. We proposed to use hydrophobic core (methoxypolyethylene glycol-polylysine) graft copolymer (HC-PGC) technology for stabilizing nanoparticle-based formulations of BPU NNRTI in water. Co-lyophilization of NNRTI/HC-PGC mixtures resulted in dry powders that could be easily reconstituted with the formation of 150-250 nm stable nanoparticles (NP). The NP and HC-PGC were non-toxic in experiments with TZM-bl reporter cells. Nanoparticles containing selected efficient candidate Z107 NNRTI preserved the ability to inhibit HIV-1 reverse transcriptase polymerase activities with no appreciable change of EC50. The formulation with HC-PGC bearing residues of oleic acid resulted in nanoparticles that were nearly identical in anti-HIV-1 potency when compared to Z107 solutions in DMSO (EC50=7.5±3.8 vs. 8.2±5.1 nM). Therefore, hydrophobic core macromolecular stabilizers form nanoparticles with insoluble NNRTI while preserving the antiviral activity of the drug cargo.


Sujet(s)
Infections à VIH/traitement médicamenteux , Nanoparticules , Inhibiteurs de la transcriptase inverse , Agents antiVIH , Antiviraux , Systèmes de délivrance de médicaments , Transcriptase inverse du VIH , VIH-1 (Virus de l'Immunodéficience Humaine de type 1)
6.
Talanta ; 155: 212-5, 2016 08 01.
Article de Anglais | MEDLINE | ID: mdl-27216675

RÉSUMÉ

Recently a covalent peroxidase-mimicking DNAzyme (cPMDNAzyme) with the improved catalytic activity was prepared. Here we demonstrate that hydrogen peroxide, the oxidant substrate of cPMDNAzyme is an inactivating agent of this catalyst. Presence of the reductant substrate, 2,2'-azino-bis(3-ethylbenthothiazoline-6-sulfonic acid (ABTS) prevents the inactivation of cPMDNAzyme. The experimental conditions (pH-optimum, concentrations of ABTS and H2O2) for the determination of cPMDNAzyme activity were optimized that allows a construction of the colorimetric cPMDNAzyme-based biosensors and assays with improved sensitivity.


Sujet(s)
Benzothiazoles/métabolisme , Matériaux biomimétiques/métabolisme , ADN catalytique/métabolisme , Peroxyde d'hydrogène/pharmacologie , Myeloperoxidase/métabolisme , Réducteurs/métabolisme , Acides sulfoniques/métabolisme , Benzothiazoles/pharmacologie , Biocatalyse , Activation enzymatique/effets des médicaments et des substances chimiques , Oxydoréduction , Réducteurs/pharmacologie , Acides sulfoniques/pharmacologie
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