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Published on: November 3, 2014
Impact of latency-reversing agents on human macrophage physiology
Laurent Hany1, Marc-Olivier Turmel1, Corinne Barat1
1Axe des Maladies Infectieuses et Immunitaires, Centre de Recherche du Centre Hospitalier Universitaire de Québec-Université Laval, Québec, Canada.
Introduction:
HIV-1 eradication is hindered by the presence of inducible long-lived reservoirs of latently infected cells which rapidly disseminate viral particles upon treatment interruption. Eliminating these reservoirs by the so-called shock and kill strategy represents a crucial concept toward an HIV-1 cure. Several molecules called latency-reversing agents (LRAs) are under intensive investigations to reactivate virus gene expression. These studies are mainly conducted on CD4+ T cells where LRAs are well tolerated and did not induce global cellular activation. However, despite their broad spectrum, the putative impact of LRAs on other cellular reservoirs such as macrophages is still ill-defined.
Methods:
We investigated the impact of the protein kinase C (PKC) activator bryostatin-1, bromodomain inhibitor JQ1 and histone deacetylase inhibitor romidepsin used either alone or in combination on human primary monocyte-derived macrophages (MDMs).
Results:
We demonstrate that bryostatin-1, JQ1, and romidepsin or their combinations are not toxic at nanomolar concentrations but induce metabolic and morphologic alterations of MDMs. Bryostatin-1 triggered the secretion of pro-inflammatory cytokines, while JQ-1 decreased it. Phagocytosis and endocytosis were modestly impaired upon bryostatin-1 treatment whereas efferocytosis was markedly downregulated by romidepsin. Despite its pro-inflammatory profile, bryostatin-1 did not induce classically activated macrophage markers. Finally, we reveal that conditioned medium from bryostatin-1-treated macrophages did not potentiate its reactivation feature.
Conclusions:
Our study reveals that LRAs can diversely impact basic physiologic features of human primary macrophages and could potentially decrease reactivation of nearby CD4+ T cells latently infected with HIV-1. Our observations further stress the need to include different cell populations when assessing HIV-1 cure strategies.
Insights
Latency-reversing agents (LRAs) impact macrophage physiology differently, affecting HIV-1 reservoirs. Further research is needed to include macrophages in HIV-1 cure strategies.
Area of Science:
- Immunology
- Virology
- Cell Biology
Background:
- HIV-1 eradication is challenged by latent viral reservoirs in cells.
- The 'shock and kill' strategy aims to eliminate these reservoirs using latency-reversing agents (LRAs).
- LRAs' effects on macrophages, a potential viral reservoir, are not well understood.
Purpose of the Study:
- To investigate the impact of LRAs on human primary macrophages.
- To assess the toxicity and physiological effects of specific LRAs on macrophages.
- To evaluate the potential of LRAs to influence HIV-1 reactivation in macrophages.
Main Methods:
- Human primary monocyte-derived macrophages (MDMs) were treated with bryostatin-1, JQ1, and romidepsin, alone or in combination.
- Toxicity, metabolic and morphologic alterations, cytokine secretion, phagocytosis, and efferocytosis were assessed.
- Conditioned medium from treated macrophages was tested for its effect on viral reactivation.
Main Results:
- Bryostatin-1, JQ1, and romidepsin were non-toxic at nanomolar concentrations but altered MDM morphology and metabolism.
- Bryostatin-1 increased pro-inflammatory cytokines, while JQ-1 decreased them; efferocytosis was reduced by romidepsin.
- Bryostatin-1 did not induce classically activated macrophage markers, and its conditioned medium did not enhance viral reactivation.
Conclusions:
- LRAs exert diverse effects on human primary macrophage physiology.
- These effects could potentially reduce the reactivation of nearby latently HIV-1 infected CD4+ T cells.
- The study highlights the necessity of evaluating LRAs across different cell types for effective HIV-1 cure strategies.

