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Ex Vivo Infection of Human Lymphoid Tissue and Female Genital Mucosa with Human Immunodeficiency Virus 1 and Histoculture
Published on: October 12, 2018
Human immunodeficiency virus type 1 (HIV-1) integration: a potential target for microbicides to prevent cell-free or
Katty Terrazas-Aranda1, Yven Van Herrewege, Daria Hazuda
1Virology Unit, Department of Microbiology, Institute of Tropical Medicine, Nationalestraat 155, B-2000 Antwerpen, Belgium. kterrazas@itg.be
Insights
Blocking HIV-1 integration with integrase strand transfer inhibitors (InSTIs) like L-870812 effectively prevents cellular infection. This compound shows promise for post-exposure prophylaxis and microbicide development due to its potent antiviral activity and lack of cytotoxicity.
Area of Science:
- Virology
- Immunology
- Pharmacology
Background:
- Blocking human immunodeficiency virus type 1 (HIV-1) integration is a critical strategy to prevent irreversible cellular infection.
- Primary targets in sexual transmission include monocyte-derived dendritic cells and CD4(+) T cells.
- Integrase strand transfer inhibitors (InSTIs) are a class of antiretroviral drugs targeting HIV-1 integration.
Purpose of the Study:
- To evaluate the efficacy of blocking HIV-1 integration using InSTIs, specifically L-870812, in relevant cell types.
- To assess the potential of L-870812 for pre- and post-exposure prophylaxis.
- To investigate the synergistic activity of L-870812 in combination with other antiretroviral agents.
Main Methods:
- Coculture of monocyte-derived dendritic cells and CD4(+) T cells to model primary HIV-1 infection.
- Assessment of HIV-1 Ba-L strain infection inhibition by L-870812 in cell-free and cell-associated settings.
- Evaluation of L-870812's activity against primary HIV-1 isolates and in combination therapies.
Main Results:
- L-870812 consistently blocked cell-free and cell-associated HIV-1 infection, with potent activity observed even 24 hours post-infection.
- The compound demonstrated efficacy against subtype C and CRFO2_AG primary isolates prevalent in the African heterosexual epidemic.
- Combinations of L-870812 with other antiretrovirals showed synergistic activity, and no cytotoxicity was observed at effective concentrations.
Conclusions:
- HIV-1 integration is a viable target for microbicide development, with InSTIs like L-870812 showing significant promise.
- L-870812's efficacy and potential for post-exposure prophylaxis warrant further investigation for HIV prevention strategies.
- The lack of cytotoxicity and synergistic activity with other drugs highlight L-870812's potential as a component of combination microbicides.
Abstract:
Conceptually, blocking human immunodeficiency virus type 1 (HIV-1) integration is the last possibility for preventing irreversible cellular infection. Using cocultures of monocyte-derived dendritic cells and CD4(+) T cells, which represent primary targets in sexual transmission, we demonstrated that blocking integration with integrase strand transfer inhibitors (InSTIs), particularly L-870812, could consistently block cell-free and cell-associated HIV-1 infection. In a pretreatment setting in which the compound was present before and during infection and was afterwards gradually diluted during the culture period, the naphthyridine carboxamide L-870812 blocked infection with the cell-free and cell-associated HIV-1 Ba-L strain at concentrations of, respectively, 1,000 and 10,000 nM. The potency of L-870812 was similar to that of the nucleotide reverse transcriptase inhibitor R-9-(2-phosphonylmethoxypropyl) adenine (PMPA) but one or two orders of magnitude lower than those of the nonnucleoside reverse transcriptase inhibitors UC781 and TMC120. In contrast, the diketo acid RDS derivative InSTIs showed clear-cut but weaker antiviral activity than L-870812. Moreover, L-870812 completely blocked subtype C and CRFO2_AG primary isolates, which are prevalent in the African heterosexual epidemic. Furthermore, the addition of micromolar concentrations of L-870812 even 24 h after infection could still block both cell-free and cell-associated Ba-L, opening the prospect of postexposure prophylaxis. Finally, an evaluation of the combined activity of L-870812 with either T20, zidovudine, PMPA, UC781, or TMC120 against replication-deficient HIV-1 Ba-L (env) pseudovirus suggested synergistic activity for all combinations. Importantly, compounds selected for the study by using the coculture model were devoid of acute or delayed cytotoxic effects at HIV-blocking concentrations. Therefore, these findings provide evidence supporting consideration of HIV-1 integration as a target for microbicide development.
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