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1.
Int J Mol Sci ; 25(13)2024 Jun 28.
Article in English | MEDLINE | ID: mdl-39000271

ABSTRACT

The human immunodeficiency virus type 1 (HIV-1) capsid is a protein core formed by multiple copies of the viral capsid (CA) protein. Inside the capsid, HIV-1 harbours all the viral components required for replication, including the genomic RNA and viral enzymes reverse transcriptase (RT) and integrase (IN). Upon infection, the RT transforms the genomic RNA into a double-stranded DNA molecule that is subsequently integrated into the host chromosome by IN. For this to happen, the viral capsid must open and release the viral DNA, in a process known as uncoating. Capsid plays a key role during the initial stages of HIV-1 replication; therefore, its stability is intimately related to infection efficiency, and untimely uncoating results in reverse transcription defects. How and where uncoating takes place and its relationship with reverse transcription is not fully understood, but the recent development of novel biochemical and cellular approaches has provided unprecedented detail on these processes. In this review, we present the latest findings on the intricate link between capsid stability, reverse transcription and uncoating, the different models proposed over the years for capsid uncoating, and the role played by other cellular factors on these processes.


Subject(s)
Capsid Proteins , Capsid , HIV-1 , Reverse Transcription , Virus Uncoating , HIV-1/genetics , HIV-1/physiology , Humans , Capsid/metabolism , Capsid Proteins/metabolism , Capsid Proteins/genetics , Virus Replication , HIV Infections/virology , HIV Infections/metabolism , RNA, Viral/metabolism , RNA, Viral/genetics , HIV Reverse Transcriptase/metabolism , HIV Reverse Transcriptase/genetics
2.
Sci Rep ; 14(1): 15742, 2024 07 08.
Article in English | MEDLINE | ID: mdl-38977798

ABSTRACT

While certain human hepatitis B virus-targeting nucleoside analogs (NAs) serve as crucial anti-HBV drugs, HBV yet remains to be a major global health threat. E-CFCP is a 4'-modified and fluoromethylenated NA that exhibits potent antiviral activity against both wild-type and drug-resistant HBVs but less potent against human immunodeficiency virus type-1 (HIV-1). Here, we show that HIV-1 with HBV-associated amino acid substitutions introduced into the RT's dNTP-binding site (N-site) is highly susceptible to E-CFCP. We determined the X-ray structures of HBV-associated HIV-1 RT mutants complexed with DNA:E-CFCP-triphosphate (E-CFCP-TP). The structures revealed that exocyclic fluoromethylene pushes the Met184 sidechain backward, and the resultant enlarged hydrophobic pocket accommodates both the fluoromethylene and 4'-cyano moiety of E-CFCP. Structural comparison with the DNA:dGTP/entecavir-triphosphate complex also indicated that the cyclopentene moiety of the bound E-CFCP-TP is slightly skewed and deviated. This positioning partly corresponds to that of the bound dNTP observed in the HIV-1 RT mutant with drug-resistant mutations F160M/M184V, resulting in the attenuation of the structural effects of F160M/M184V substitutions. These results expand our knowledge of the interactions between NAs and the RT N-site and should help further design antiviral NAs against both HIV-1 and HBV.


Subject(s)
Antiviral Agents , Catalytic Domain , Drug Resistance, Viral , HIV-1 , Hepatitis B virus , Mutation , Hepatitis B virus/drug effects , Hepatitis B virus/genetics , Drug Resistance, Viral/genetics , Humans , Antiviral Agents/pharmacology , Antiviral Agents/chemistry , HIV-1/drug effects , HIV-1/genetics , Nucleosides/pharmacology , Nucleosides/chemistry , Nucleosides/metabolism , HIV Reverse Transcriptase/metabolism , HIV Reverse Transcriptase/genetics , HIV Reverse Transcriptase/chemistry , HIV Reverse Transcriptase/antagonists & inhibitors , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/metabolism , Crystallography, X-Ray , RNA-Directed DNA Polymerase/metabolism , RNA-Directed DNA Polymerase/genetics , RNA-Directed DNA Polymerase/chemistry , Binding Sites , Protein Binding , Models, Molecular
3.
Bioorg Med Chem ; 110: 117813, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38954919

ABSTRACT

Nucleoside reverse transcriptase inhibitors (NRTIs) have been extensively studied as drugs targeting HIV RT. However, the practice or use of approved NRTIs lacking the 3'-hydroxy group often promotes frequent HIV mutations and generates drug-resistance. Here, we describe a novel NRTI with 2'-ß-methylselenyl modification. We found that this modification inhibited the DNA elongation reaction by HIV-1 RT despite having a 3'-hydroxy group. Moreover, the conformation of this nucleoside analog is controlled at C3'-endo, a conformation that resists excision from the elongating DNA by HIV RT. Accordingly, the designed analogs exhibited activity against both wild-type HIV and multidrug-resistant HIV mutants.


Subject(s)
Anti-HIV Agents , HIV Reverse Transcriptase , HIV-1 , Mutation , Reverse Transcriptase Inhibitors , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/chemical synthesis , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , HIV-1/drug effects , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemistry , Anti-HIV Agents/chemical synthesis , Humans , Structure-Activity Relationship , Molecular Structure , Nucleosides/chemistry , Nucleosides/pharmacology , Nucleosides/chemical synthesis , Microbial Sensitivity Tests , Dose-Response Relationship, Drug
4.
Vopr Virusol ; 69(3): 231-240, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38996372

ABSTRACT

INTRODUCTION: The amino acid substitution A62V in reverse transcriptase was identified as a mutation correlated with virologic failure in patients on first-line therapy including tenofovir (TDF) and tenofovir alafenamide (TAF). A62V is a typically polymorphic mutation in HIV-1 sub-subtype A6, which is the most widespread virus variant in Russia. MATERIALS AND METHODS: The European EuResist (EIDB) database was queried to form two equivalent groups of patients: group 1 ‒ patients with A62V at baseline treated with TDF or TAF on the first-line therapy, group 2 ‒ patients without A62V at baseline treated with TDF or TAF on the first-line therapy. Each group included 23 patients. RESULTS: There was no statistical difference between the two groups in virologic efficacy in 4, 12, and 24 weeks after the start of antiretroviral therapy (ART) and in the frequency of virologic failures. CONCLUSION: This study has some limitations, and the exact role of A62V in the efficacy of the first-line ART based on tenofovir deserves further investigation.


Subject(s)
Anti-HIV Agents , HIV Infections , HIV Reverse Transcriptase , HIV-1 , Mutation , Tenofovir , Humans , Tenofovir/therapeutic use , Tenofovir/analogs & derivatives , HIV Infections/drug therapy , HIV Infections/virology , HIV Infections/genetics , HIV Reverse Transcriptase/genetics , HIV-1/genetics , HIV-1/drug effects , Male , Female , Adult , Anti-HIV Agents/therapeutic use , Middle Aged , Drug Resistance, Viral/genetics , Amino Acid Substitution , Alanine/therapeutic use , Russia/epidemiology , Adenine/analogs & derivatives , Adenine/therapeutic use , Reverse Transcriptase Inhibitors/therapeutic use , Viral Load/drug effects
5.
J Med Virol ; 96(8): e29830, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39072764

ABSTRACT

In the current antiretroviral landscape, continuous efforts are still needed to search for novel chemotypes of human immunodeficiency virus type 1 (HIV-1) inhibitors with improved drug resistance profiles and favorable drug-like properties. Herein, we report the design, synthesis, biological characterization, and druggability evaluation of a class of non-nucleoside reverse transcriptase inhibitors. Guided by the available crystallographic information, a series of novel indolylarylsulfone derivatives were rationally discovered via the substituent decorating strategy to fully explore the chemical space of the entrance channel. Among them, compound 11h bearing the cyano-substituted benzyl moiety proved to be the most effective inhibitor against HIV-1 wild-type and mutant strains (EC50 = 0.0039-0.338 µM), being far more potent than or comparable to etravirine and doravirine. Besides, 11h did not exhibit cytotoxicity at the maximum test concentration. Meanwhile, the binding target of 11h was further confirmed to be reverse transcriptase (IC50 = 0.055 µM). Preliminary structure-activity relationship were discussed to guide further optimization work. Molecular docking and dynamics simulation studies were investigated in detail to rationalize the biological evaluation results. Further drug-likeness assessment indicated that 11h possessed excellent physicochemical properties. Moreover, no apparent hERG blockade liability and cytochrome P450 inhibition were observed for 11h. Notably, 11h was characterized by favorable in vitro metabolic stability with moderate clearance rates and long half-lives in human plasma and liver microsomes. Overall, 11h holds great promise as an ideal Anti-HIV-1 lead compound due to its potent antiviral efficacy, low toxicity, and favorable drug-like profiles.


Subject(s)
Anti-HIV Agents , Drug Design , HIV-1 , Molecular Docking Simulation , Reverse Transcriptase Inhibitors , Sulfones , HIV-1/drug effects , Humans , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemical synthesis , Anti-HIV Agents/chemistry , Structure-Activity Relationship , Sulfones/pharmacology , Sulfones/chemical synthesis , Sulfones/chemistry , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemical synthesis , Reverse Transcriptase Inhibitors/chemistry , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism
6.
Biomolecules ; 14(7)2024 Jul 09.
Article in English | MEDLINE | ID: mdl-39062532

ABSTRACT

The ribonuclease H (RNase H) active site of HIV-1 reverse transcriptase (RT) is the only viral enzyme not targeted by approved antiretroviral drugs. Using a fluorescence-based in vitro assay, we screened 65,239 compounds at a final concentration of 10 µM to identify inhibitors of RT RNase H activity. We identified 41 compounds that exhibited 50% inhibitory concentration (i.e., IC50) values < 1.0 µM. Two of these compounds, 2-(4-methyl-3-(piperidin-1-ylsulfonyl)phenyl)benzo[d]isothiazol-3(2H)-one (1) and ethyl 2-(2-(3-oxobenzo[d]isothiazol-2(3H)-yl)thiazol-4-yl)acetate (2), which both share the same benzisothiazolone pharmacophore, demonstrate robust antiviral activity (50% effective concentrations of 1.68 ± 0.94 µM and 2.68 ± 0.54, respectively) in the absence of cellular toxicity. A limited structure-activity relationship analysis identified two additional benzisothiazolone analogs, 2-methylbenzo[d]isothiazol-3(2H)-one (3) and N,N-diethyl-3-(3-oxobenzo[d]isothiazol-2(3H)-yl)benzenesulfonamide (4), which also resulted in the inhibition of RT RNase H activity and virus replication. Compounds 1, 2 and 4, but not 3, inhibited the DNA polymerase activity of RT (IC50 values~1 to 6 µM). In conclusion, benzisothiazolone derivatives represent a new class of multifunctional RT inhibitors that warrants further assessment for the treatment of HIV-1 infection.


Subject(s)
HIV Reverse Transcriptase , HIV-1 , Reverse Transcriptase Inhibitors , Thiazoles , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/chemical synthesis , Humans , HIV-1/drug effects , HIV-1/enzymology , Thiazoles/pharmacology , Thiazoles/chemistry , Ribonuclease H/antagonists & inhibitors , Ribonuclease H/metabolism , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemistry , Anti-HIV Agents/chemical synthesis , Drug Discovery , Structure-Activity Relationship
7.
J Inorg Biochem ; 259: 112664, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39018747

ABSTRACT

HIV-1 reverse transcriptase (RT) inhibitors play a crucial role in the treatment of HIV by preventing the activity of the enzyme responsible for the replication of the virus. The HIV-1 Tat protein binds to transactivation response (TAR) RNA and recruits host factors to stimulate HIV-1 transcription. We have created a small library consisting of 4 × 6 polypyridyl Ru(II) complexes that selectively bind to TAR RNA, with targeting groups specific to HIV-1 TAR RNA. The molecule design was conducted by introducing hydroxyl or methoxy groups into an established potent TAR binder. The potential TAR binding ability was analysis from nature charge population and electrostatic potential by quantum chemistry calculations. Key modifications were found to be R1 and R3 groups. The most potent and selective TAR RNA binder was a3 with R1 = OH, R2 = H and R3 = Me. Through molecular recognition of hydrogen bonds and electrostatic attraction, they were able to firmly and selectively bind HIV-1 TAR RNA. Furthermore, they efficiently obstructed the contact between TAR RNA and Tat protein, and inhibited the reverse transcription activity of HIV-1 RT. The polypyridyl Ru(II) complexes were chemical and photo-stable, and sensitive and selective spectroscopic responses to TAR RNA. They exhibited little toxicity towards normal cells. Hence, this study might offer significant drug design approaches for researching AIDS and other illnesses associated with RT, including HCV, EBOV, and SARS-CoV-2. Moreover, it could contribute to fundamental research on the interactions of inorganic transition metal complexes with biomolecules.


Subject(s)
Coordination Complexes , HIV Reverse Transcriptase , HIV-1 , RNA, Viral , Reverse Transcriptase Inhibitors , Ruthenium , Ruthenium/chemistry , HIV-1/drug effects , HIV-1/enzymology , Humans , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , HIV Reverse Transcriptase/chemistry , Structure-Activity Relationship , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Coordination Complexes/pharmacology , Coordination Complexes/chemistry , RNA, Viral/metabolism , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemistry , HIV Long Terminal Repeat/drug effects
8.
Protein Sci ; 33(7): e5080, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38896002

ABSTRACT

The Gag-Pol polyprotein in human immunodeficiency virus type I (HIV-1) encodes enzymes that are essential for virus replication: protease (PR), reverse transcriptase (RT), and integrase (IN). The mature forms of PR, RT and IN are homodimer, heterodimer and tetramer, respectively. The precise mechanism underlying the formation of dimer or tetramer is not yet understood. Here, to gain insight into the dimerization of PR and RT in the precursor, we prepared a model precursor, PR-RT, incorporating an inactivating mutation at the PR active site, D25A, and including two residues in the p6* region, fused to a SUMO-tag, at the N-terminus of the PR region. We also prepared two mutants of PR-RT containing a dimer dissociation mutation either in the PR region, PR(T26A)-RT, or in the RT region, PR-RT(W401A). Size exclusion chromatography showed both monomer and dimer fractions in PR-RT and PR(T26A)-RT, but only monomer in PR-RT(W401A). SEC experiments of PR-RT in the presence of protease inhibitor, darunavir, significantly enhanced the dimerization. Additionally, SEC results suggest an estimated PR-RT dimer dissociation constant that is higher than that of the mature RT heterodimer, p66/p51, but slightly lower than the premature RT homodimer, p66/p66. Reverse transcriptase assays and RT maturation assays were performed as tools to assess the effects of the PR dimer-interface on these functions. Our results consistently indicate that the RT dimer-interface plays a crucial role in the dimerization in PR-RT, whereas the PR dimer-interface has a lesser role.


Subject(s)
HIV Protease , HIV Reverse Transcriptase , HIV-1 , Protein Multimerization , HIV Reverse Transcriptase/chemistry , HIV Reverse Transcriptase/metabolism , HIV Reverse Transcriptase/genetics , HIV Protease/chemistry , HIV Protease/genetics , HIV Protease/metabolism , HIV-1/enzymology , HIV-1/genetics , HIV-1/chemistry , Humans , Models, Molecular , Dimerization
9.
Antimicrob Agents Chemother ; 68(7): e0033424, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38864613

ABSTRACT

Islatravir (ISL) is a deoxyadenosine analog that inhibits HIV-1 reverse transcription by multiple mechanisms. Lenacapavir (LEN) is a novel capsid inhibitor that inhibits HIV-1 at multiple stages throughout the viral life cycle. ISL and LEN are being investigated as once-weekly combination oral therapy for the treatment of HIV-1. Here, we characterized ISL and LEN in vitro to assess combinatorial antiviral activity, cytotoxicity, and the potential for interactions between the two compounds. Bliss analysis revealed ISL with LEN demonstrated additive inhibition of HIV-1 replication, with no evidence of antagonism across the range of concentrations tested. ISL exhibited potent antiviral activity against variants encoding known LEN resistance-associated mutations (RAMs) with or without the presence of M184V, an ISL RAM in reverse transcriptase (RT) . Static resistance selection experiments were conducted with ISL and LEN alone and in combination, initiating with either wild-type virus or virus containing the M184I RAM in RT to further assess their barrier to the emergence of resistance. The combination of ISL with LEN more effectively suppressed viral breakthrough at lower multiples of the compounds' IC50 (half-maximal inhibitory concentration) values and fewer mutations emerged with the combination compared to either compound on its own. The known pathways for development of resistance with ISL and LEN were not altered, and no novel single mutations emerged that substantially reduced susceptibility to either compound. The lack of antagonism and cross-resistance between ISL and LEN support the ongoing evaluation of the combination for treatment of HIV-1.


Subject(s)
Anti-HIV Agents , Drug Resistance, Viral , HIV-1 , Virus Replication , HIV-1/drug effects , HIV-1/genetics , Drug Resistance, Viral/drug effects , Drug Resistance, Viral/genetics , Humans , Anti-HIV Agents/pharmacology , Virus Replication/drug effects , Deoxyadenosines/pharmacology , Mutation , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/genetics , Reverse Transcriptase Inhibitors/pharmacology , Microbial Sensitivity Tests , Cell Line , HIV Infections/drug therapy , HIV Infections/virology
10.
Inorg Chem ; 63(26): 12342-12349, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38904258

ABSTRACT

As a typical RNA virus, the genetic information on HIV-1 is entirely stored in RNA. The reverse transcription activity of HIV-1 reverse transcriptase (RT) plays a crucial role in the replication and transmission of the virus. Non-nucleoside RT inhibitors (NNRTIs) block the function of RT by binding to the RNA binding site on RT, with very few targeting viral RNA. In this study, by transforming planar conjugated ligands into a spiro structure, we convert classical Ru(II) DNA intercalators into a nonintercalator. This enables selective binding to HIV-1 transactivation response (TAR) RNA on the outer side of nucleic acids through dual interactions involving hydrogen bonds and electrostatic attraction, effectively inhibiting HIV-1 RT and serving as a selective fluorescence probe for TAR RNA.


Subject(s)
HIV Reverse Transcriptase , HIV-1 , Reverse Transcriptase Inhibitors , Ruthenium , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/metabolism , Ligands , HIV-1/enzymology , HIV-1/drug effects , Ruthenium/chemistry , Ruthenium/pharmacology , RNA, Viral/metabolism , RNA, Viral/chemistry , Spiro Compounds/chemistry , Spiro Compounds/pharmacology , Spiro Compounds/metabolism , Coordination Complexes/chemistry , Coordination Complexes/pharmacology , Coordination Complexes/chemical synthesis , Intercalating Agents/chemistry , Intercalating Agents/pharmacology , Molecular Structure , Humans , Anti-HIV Agents/chemistry , Anti-HIV Agents/pharmacology , HIV Long Terminal Repeat , Binding Sites
11.
J Antimicrob Chemother ; 79(8): 1974-1984, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38884154

ABSTRACT

BACKGROUND: Doravirine is the latest NNRTI to be approved for the treatment of HIV-1 and has a different resistance profile from first-generation NNRTIs. Our aim was to investigate the virological efficacy of antiretroviral treatment including doravirine in people living with HIV-1 (PLWHIV), the factors associated with virological failure (VF) and those associated with the emergence of reverse transcriptase (RT) mutations in the case of VF. METHODS: A retrospective national survey of PLWHIV who were either naive or experienced on antiretroviral treatment including doravirine was conducted. VF was defined as two consecutive plasma viral loads (VLs) of ≥50 copies/mL or one VL of ≥200 copies/mL. Genotypic resistance tests were interpreted using the Stanford (v9.4.1) and ANRS (v33) algorithms. RESULTS: Of the 589 PLWHIV treated with a doravirine-containing regimen, 8.5% were naive and 91.5% had prior antiretroviral experience; 56.9% were infected with HIV-1 B subtype. Overall, 88.3% and 85.1% of participants were virologically controlled at Month (M)3 and M6 of doravirine treatment, respectively. In multivariable analysis, CRF02_AG subtype, higher zenith plasma HIV-1 RNA VL, doravirine initiation in the context of failure and baseline V179D mutation presence were associated with VF. Among 88 PLWHIV who experienced virological failure at M6, 15.9% had a median of 2 (IQR 1-3) HIV RT mutations. In multivariable analysis, the only factor associated with the occurrence of mutations was a genotypic sensitivity score that was not fully sensitive. CONCLUSIONS: This study is one of the largest to characterize the virological efficacy of doravirine-containing regimens in clinical practice and to identify factors associated with VF or emergence of resistance mutations that should be considered in clinical management.


Subject(s)
Anti-HIV Agents , Drug Resistance, Viral , HIV Infections , HIV-1 , Pyridones , Triazoles , Viral Load , Humans , HIV-1/genetics , HIV-1/drug effects , HIV Infections/drug therapy , HIV Infections/virology , Pyridones/therapeutic use , Male , Female , Retrospective Studies , Adult , Middle Aged , Viral Load/drug effects , France , Anti-HIV Agents/therapeutic use , Drug Resistance, Viral/genetics , Triazoles/therapeutic use , Genotype , Mutation , HIV Reverse Transcriptase/genetics , Antiretroviral Therapy, Highly Active , Treatment Outcome
12.
J Antimicrob Chemother ; 79(7): 1673-1676, 2024 07 01.
Article in English | MEDLINE | ID: mdl-38804140

ABSTRACT

OBJECTIVES: Resistance associated mutations (RAMs) are archived in the HIV reservoir and can re-emerge with an inappropriate ART use limiting treatment options. However, recent studies, using ultra-deep sequencing (UDS), showed a decrease of quasispecies harbouring RAMs, suggesting that recycling some antiretrovirals could be considered. The aim of this study was to characterize, in HIV treated PLWHIV, the M184V mutation decrease kinetics in proviral DNA and associated factors of M184V mutation clearance over time. METHODS: UDS was performed on HIV-DNA from blood cells at different time points to quantify the percentage of M184V positive quasispecies. The sequence reads were analysed with a minimum coverage set at 50 and an ambiguity filter at 5% or 2%. RESULTS: At 2.5 years after the first time point, the M184V lost was observed in 50% of PLWHIV. Moreover, univariate analyses highlight that a higher nadir CD4 count and a lower zenith HIV1 RNA viral load were correlated with a faster clearance of the mutation. In multivariate analysis, a higher zenith was negatively associated with the M184V clearance at the 5% threshold. Interestingly, lamivudine/emtricitabine presence in the ART therapy regiment during the 5 years was not associated with the persistence of the M184V. CONCLUSIONS: Our study provides new information concerning the clearance speed of M184V mutation over time in PLWHIV with fully suppressed viremia, opens the discussion about the duration needed to consider a lamivudine/emtricitabine recycling and reinforces the association of the nadir and zenith values with the M184V mutation clearance.


Subject(s)
Anti-HIV Agents , Drug Resistance, Viral , HIV Infections , HIV-1 , Mutation , Viral Load , Humans , HIV Infections/drug therapy , HIV Infections/virology , Drug Resistance, Viral/genetics , HIV-1/genetics , HIV-1/drug effects , CD4 Lymphocyte Count , Male , Anti-HIV Agents/therapeutic use , Anti-HIV Agents/pharmacology , Female , Adult , Middle Aged , Proviruses/genetics , High-Throughput Nucleotide Sequencing , DNA, Viral/genetics , DNA, Viral/blood , HIV Reverse Transcriptase/genetics , Antiretroviral Therapy, Highly Active
13.
Chem Biol Drug Des ; 103(5): e14530, 2024 May.
Article in English | MEDLINE | ID: mdl-38725091

ABSTRACT

Feline immunodeficiency virus (FIV) is a common infection found in domesticated and wild cats worldwide. Despite the wealth of therapeutic understanding of the disease in humans, considerably less information exists regarding the treatment of the disease in felines. Current treatment relies on drugs developed for the related human immunodeficiency virus (HIV) and includes compounds of the popular non-nucleotide reverse transcriptase (NNRTI) class. This is despite FIV-RT being only 67% similar to HIV-1 RT at the enzyme level, increasing to 88% for the allosteric pocket targeted by NNRTIs. The goal of this project was to try to quantify how well the more extensive pharmacological knowledge available for human disease translates to felines. To this end we screened known NNRTIs and 10 diverse pyrimidine analogs identified virtually. We use this chemo-centric probe approach to (a) assess the similarity between the two related RT targets based on the observed experimental inhibition values, (b) try to identify more potent inhibitors at FIV, and (c) gain a better appreciation of the structure-activity relationships (SAR). We found the correlation between IC50s at the two targets to be strong (r2 = 0.87) and identified compound 1 as the most potent inhibitor of FIV with IC50 of 0.030 µM ± 0.009. This compared to FIV IC50 values of 0.22 ± 0.17 µM, 0.040 ± 0.010 µM and >160 µM for known anti HIV-1 RT drugs Efavirenz, Rilpivirine, and Nevirapine, respectively. This knowledge, along with an understanding of the structural origin that give rise to any differences could improve the way HIV drugs are repurposed for FIV.


Subject(s)
HIV Reverse Transcriptase , Immunodeficiency Virus, Feline , Reverse Transcriptase Inhibitors , Animals , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Cats , Immunodeficiency Virus, Feline/drug effects , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , Humans , Structure-Activity Relationship , Pyrimidines/chemistry , Pyrimidines/pharmacology , Alkynes/chemistry , Alkynes/pharmacology , HIV-1/drug effects , HIV-1/enzymology , Cyclopropanes/pharmacology , Cyclopropanes/chemistry , Molecular Docking Simulation , Benzoxazines/chemistry , Benzoxazines/pharmacology
14.
J Clin Microbiol ; 62(6): e0013624, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38727213

ABSTRACT

HIV genotyping is used to assess HIV susceptibility to antiretroviral drugs. The Applied Biosystems HIV-1 Genotyping Kit with Integrase (AB kit, Thermo Fisher Scientific) detects resistance-associated mutations (RAMs) in HIV protease (PR), reverse transcriptase (RT), and integrase (IN). We compared results from the AB kit with results obtained previously with the ViroSeq HIV-1 Genotyping System. DNA amplicons from the AB kit were also analyzed using next-generation sequencing (NGS). HIV RNA was extracted using the MagNA Pure 24 instrument (Roche Diagnostics; 96 plasma samples, HIV subtype B, viral load range: 530-737,741 copies/mL). FASTA files were generated from AB kit data using Exatype (Hyrax Biosciences). DNA amplicons from the AB kit were also analyzed by NGS using the Nextera XT kit (Illumina). Drug resistance was predicted using the Stanford HIV Drug Resistance Database. The mean genetic distance for sequences from ViroSeq and the AB kit was 0.02% for PR/RT and 0.04% for IN; 103 major RAMs were detected by both methods. Four additional major RAMs were detected by the AB kit only. These four major RAMs were also detected by NGS (detected in 18.1%-38.2% of NGS reads). NGS detected 27 major RAMs that were not detected with either of the Sanger sequencing-based kits. All major RAMs detected with ViroSeq were detected with the AB kit; additional RAMs were detected with the AB kit only. DNA amplicons from the AB kit can be used for NGS for more sensitive detection of RAMs.


Subject(s)
Drug Resistance, Viral , Genotyping Techniques , HIV Infections , HIV Integrase , HIV-1 , High-Throughput Nucleotide Sequencing , HIV-1/genetics , HIV-1/drug effects , HIV-1/enzymology , HIV-1/isolation & purification , HIV-1/classification , Humans , HIV Infections/virology , Genotyping Techniques/methods , Drug Resistance, Viral/genetics , HIV Integrase/genetics , High-Throughput Nucleotide Sequencing/methods , Genotype , Reagent Kits, Diagnostic/standards , RNA, Viral/genetics , Mutation , HIV Reverse Transcriptase/genetics , HIV Protease/genetics
15.
J Virol Methods ; 327: 114939, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38604585

ABSTRACT

Despite increasing scale-up of antiretroviral therapy (ART) coverage, challenges related to adherence and HIV drug resistance (HIVDR) remain. The high cost of HIVDR surveillance is a persistent challenge with implementation in resource-constrained settings. Dried blood spot (DBS) specimens have been demonstrated to be a feasible alternative to plasma or serum for HIVDR genotyping and are more suitable for lower resource settings. There is a need for affordable HIVDR genotyping assays which can amplify HIV-1 sequences from DBS specimens, particularly those with low viral loads, at a low cost. Here, we present an in-house assay capable of reliably amplifying HIV-1 protease and partial reverse transcriptase genes from DBS specimens, which covers the complete World Health Organization 2009 list of drug resistance mutations under surveillance. DBS specimens were prepared using whole blood spiked with HIV-1 at concentrations of 10,000, 5000, 1000, and 500 copies/mL (n=30 for each concentration). Specimens were tested in triplicate. A two-step approach was used consisting of cDNA synthesis followed by nested PCR. The limit of detection of the assay was calculated to be approximately 5000 (95% CI: 3200-10,700) copies/mL for the protease gene and 3600 (95% CI: 2200-10,000) copies/mL for reverse transcriptase. The assay was observed to be most sensitive with higher viral load specimens (97.8% [95% CI: 92.2-99.7]) for both protease and reverse transcriptase at 10,000 copies/mL with performance decreasing with the use of specimens with lower viral loads (46.7% [36.1-57.5] and 60.0% [49.1-70.2] at 500 copies/mL for protease and reverse transcriptase, respectively). Ultimately, this assay presents a promising opportunity for use in resource-constrained settings. Future work should involve validation under field conditions including sub-optimal storage conditions and preparation of DBS with fingerprick blood in order to accurately reflect real-world collection scenarios.


Subject(s)
Drug Resistance, Viral , HIV Infections , HIV Protease , HIV Reverse Transcriptase , HIV-1 , Mutation , Humans , HIV-1/genetics , HIV-1/drug effects , HIV-1/isolation & purification , Drug Resistance, Viral/genetics , HIV Infections/virology , HIV Infections/drug therapy , HIV Reverse Transcriptase/genetics , HIV Protease/genetics , Dried Blood Spot Testing/methods , Specimen Handling/methods , Viral Load , Anti-HIV Agents/pharmacology , Anti-HIV Agents/therapeutic use , Genotyping Techniques/methods , Genotype , Sensitivity and Specificity
16.
J Struct Biol ; 216(2): 108094, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38653343

ABSTRACT

This study synthesized and evaluated a series of benzotriazole derivatives denoted 3(a-j) and 6(a-j) for their anti-HIV-1 RT activities compared to the standard drug efavirenz. Notably, compound 3 h, followed closely by 6 h, exhibited significant anti-HIV-1 RT efficacy relative to the standard drug. In vivo oral toxicity studies were conducted for the most active compound 3 h, confirming its nontoxic nature to ascertain the safety profile. By employing molecular docking techniques, we explored the potential interactions between the synthesized compounds (ligands) and a target biomolecule (protein)(PDB ID 1RT2) at the molecular level. We undertook the molecular dynamics study of 3 h, the most active compound, within the active binding pocket of the cocrystallized structure of HIV-1 RT (PDB ID 1RT2). We aimed to learn more about how biomolecular systems behave, interact, and change at the atomic or molecular level over time. Finally, the DFT-derived HOMO and LUMO orbitals, as well as analysis of the molecular electrostatic potential map, aid in discerning the reactivity characteristics of our molecule.


Subject(s)
Anti-HIV Agents , HIV-1 , Molecular Docking Simulation , Triazoles , Triazoles/chemistry , Triazoles/pharmacology , Anti-HIV Agents/chemistry , Anti-HIV Agents/pharmacology , HIV-1/drug effects , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/chemistry , HIV Reverse Transcriptase/metabolism , Humans , Molecular Dynamics Simulation , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/toxicity , Models, Molecular , Density Functional Theory , Structure-Activity Relationship , Alkynes/chemistry , Animals , Cyclopropanes/toxicity , Benzoxazines/chemistry , Benzoxazines/pharmacology
17.
Viruses ; 16(4)2024 03 22.
Article in English | MEDLINE | ID: mdl-38675834

ABSTRACT

Tenofovir (TFV) is the active form of the prodrugs tenofovir disoproxil fumarate (TDF) and tenofovir alafenamide (TAF), both clinically prescribed as HIV reverse transcriptase inhibitors. The biophysical interactions between these compounds and human serum albumin (HSA), the primary carrier of exogenous compounds in the human bloodstream, have not yet been thoroughly characterized. Thus, the present study reports the interaction profile between HSA and TFV, TDF, and TAF via UV-Vis, steady-state, and time-resolved fluorescence techniques combined with isothermal titration calorimetry (ITC) and in silico calculations. A spontaneous interaction in the ground state, which does not perturb the microenvironment close to the Trp-214 residue, is classified as weak. In the case of HSA/TFV and HSA/TDF, the binding is both enthalpically and entropically driven, while for HSA/TAF, the binding is only entropically dominated. The binding constant (Ka) and thermodynamic parameters obtained via ITC assays agree with those obtained using steady-state fluorescence quenching measurements, reinforcing the reliability of the data. The small internal cavity known as site I is probably the main binding pocket for TFV due to the low steric volume of the drug. In contrast, most external sites (II and III) can better accommodate TAF due to the high steric volume of this prodrug. The cross-docking approach corroborated experimental drug-displacement assays, indicating that the binding affinity of TFV and TAF might be impacted by the presence of different compounds bound to albumin. Overall, the weak binding capacity of albumin to TFV, TDF, and TAF is one of the main factors for the low residence time of these antiretrovirals in the human bloodstream; however, positive cooperativity for TAF and TDF was detected in the presence of some drugs, which might improve their residence time (pharmacokinetic profile).


Subject(s)
Anti-HIV Agents , Protein Binding , Reverse Transcriptase Inhibitors , Serum Albumin, Human , Tenofovir , Tenofovir/analogs & derivatives , Humans , Reverse Transcriptase Inhibitors/metabolism , Reverse Transcriptase Inhibitors/chemistry , Tenofovir/metabolism , Tenofovir/chemistry , Serum Albumin, Human/metabolism , Serum Albumin, Human/chemistry , Anti-HIV Agents/metabolism , Thermodynamics , Calorimetry , Binding Sites , HIV Infections/virology , HIV Infections/drug therapy , Alanine/metabolism , HIV Reverse Transcriptase/metabolism , HIV Reverse Transcriptase/chemistry
18.
Bioorg Chem ; 147: 107340, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38593532

ABSTRACT

In pursuit of enhancing the anti-resistance efficacy and solubility of our previously identified NNRTI 1, a series of biphenyl-quinazoline derivatives were synthesized employing a structure-based drug design strategy. Noteworthy advancements in anti-resistance efficacy were discerned among some of these analogs, prominently exemplified by compound 7ag, which exhibited a remarkable 1.37 to 602.41-fold increase in potency against mutant strains (Y181C, L100I, Y188L, F227L + V106A, and K103N + Y181C) in comparison to compound 1. Compound 7ag also demonstrated comparable anti-HIV activity against both WT HIV and K103N, albeit with a marginal reduction in activity against E138K. Of significance, this analog showed augmented selectivity index (SI > 5368) relative to compound 1 (SI > 37764), Nevirapine (SI > 158), Efavirenz (SI > 269), and Etravirine (SI > 1519). Moreover, it displayed a significant enhancement in water solubility, surpassing that of compound 1, Etravirine, and Rilpivirine. To elucidate the underlying molecular mechanisms, molecular docking studies were undertaken to probe the critical interactions between 7ag and both WT and mutant strains of HIV-1 RT. These findings furnish invaluable insights driving further advancements in the development of DAPYs for HIV therapy.


Subject(s)
Anti-HIV Agents , Biphenyl Compounds , Drug Design , HIV Reverse Transcriptase , HIV-1 , Quinazolines , Reverse Transcriptase Inhibitors , Solubility , Humans , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemistry , Anti-HIV Agents/chemical synthesis , Biphenyl Compounds/antagonists & inhibitors , Biphenyl Compounds/pharmacology , Biphenyl Compounds/chemistry , Dose-Response Relationship, Drug , Drug Resistance, Viral/drug effects , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , HIV-1/drug effects , HIV-1/enzymology , Microbial Sensitivity Tests , Molecular Docking Simulation , Molecular Structure , Quinazolines/pharmacology , Quinazolines/chemistry , Quinazolines/chemical synthesis , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/chemical synthesis , Structure-Activity Relationship
19.
J Med Chem ; 67(8): 6570-6584, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38613773

ABSTRACT

NNRTI is an important component of the highly active antiretroviral therapy (HAART), but the rapid emergence of drug resistance and poor pharmacokinetics limited their clinical application. Herein, a series of novel aryl triazolone dihydropyridines (ATDPs) were designed by structure-guided design with the aim of improving drug resistance profiles and pharmacokinetic profiles. Compound 10n (EC50 = 0.009-17.7 µM) exhibited the most active potency, being superior to or comparable to that of doravirine (DOR) against the whole tested viral panel. Molecular docking was performed to clarify the reason for its higher resistance profiles. Moreover, 10n demonstrated excellent pharmacokinetic profile (T1/2 = 5.09 h, F = 108.96%) compared that of DOR (T1/2 = 4.4 h, F = 57%). Additionally, 10n was also verified to have no in vivo acute or subacute toxicity (LD50 > 2000 mg/kg), suggesting that 10n is worth further investigation as a novel oral NNRTIs for HIV-1 therapy.


Subject(s)
Anti-HIV Agents , Dihydropyridines , HIV-1 , Molecular Docking Simulation , Reverse Transcriptase Inhibitors , Triazoles , HIV-1/drug effects , Triazoles/chemistry , Triazoles/pharmacology , Triazoles/pharmacokinetics , Humans , Anti-HIV Agents/pharmacology , Anti-HIV Agents/chemistry , Anti-HIV Agents/chemical synthesis , Anti-HIV Agents/pharmacokinetics , Reverse Transcriptase Inhibitors/pharmacology , Reverse Transcriptase Inhibitors/chemistry , Reverse Transcriptase Inhibitors/chemical synthesis , Reverse Transcriptase Inhibitors/pharmacokinetics , Dihydropyridines/chemistry , Dihydropyridines/pharmacology , Dihydropyridines/pharmacokinetics , Structure-Activity Relationship , HIV Reverse Transcriptase/antagonists & inhibitors , HIV Reverse Transcriptase/metabolism , Animals , Male , Drug Discovery , Molecular Structure , Mice
20.
Chem Biol Drug Des ; 103(3): e14510, 2024 03.
Article in English | MEDLINE | ID: mdl-38519265

ABSTRACT

In this study, a novel series of diarylpyrimidine derivatives with Fsp3-enriched spirocycles were designed and synthesized to further explore the chemical space of the hydrophobic channel of the NNRTI-binding pocket. The biological evaluation results showed that most of the compounds displayed effective inhibitory potency against the HIV-1 wild-type strain, with EC50 values ranging from micromolar to submicromolar levels. Among them, TT6 turned out to be the most effective inhibitor with an EC50 value of 0.17 µM, demonstrating up to 47 times more active than that of reference drug 3TC (EC50 = 8.01 µM). More encouragingly, TT6 was found to potently inhibit the HIV-1 mutant strain K103N with an EC50 value of 0.69 µM, being about 6-fold more potent than 3TC (EC50 = 3.68 µM) and NVP (EC50 = 4.62 µM). Furthermore, TT6 exhibited the most potent inhibitory activity toward HIV-1 reverse transcriptase with an IC50 value of 0.33 µM. Additionally, molecular simulation studies were conducted to investigate the binding modes between TT6 and NNRTI-binding pocket, which may provide valuable clues for the follow-up structural optimizations.


Subject(s)
Anti-HIV Agents , HIV-1 , Anti-HIV Agents/chemistry , Structure-Activity Relationship , Drug Design , Reverse Transcriptase Inhibitors/chemistry , Molecular Docking Simulation , HIV Reverse Transcriptase/metabolism
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