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Published on: October 2, 2017
Sirtuin 1-Chromatin-Binding Dynamics Points to a Common Mechanism Regulating Inflammatory Targets in SIV Infection
Nikki Bortell1, Liana Basova1,2, Julia A Najera1
1Molecular and Cellular Neurosciences Department, The Scripps Research Institute, La Jolla, CA, USA.
Abstract:
Microglia and macrophages are the main non-neuronal subsets of myeloid origin in the brain, and are critical regulators in neurodegenerative disorders, where inflammation is a key factor. Since HIV infection results in neurological perturbations that are similar to those in aging, we examined microglial and infiltrating myeloid subsets in the search for changes that might resemble the ones in aging. For that, we used the SIV infection in rhesus macaques to model neuroAIDS. We found that Sirt-1, a molecule that impacts survival and health in many models, was decreased in cell preparations containing a majority of microglia and myeloid cells from the brain of infected macaques. The role of Sirt-1 in neuroAIDS is unknown. We hypothesized that Sirt-1 silencing functions are affected by SIV. Mapping of Sirt-1 binding patterns to chromatin revealed that the number of Sirt-1-bound genes was 29.6% increased in myeloid cells from infected animals with mild or no detectable neuropathology, but 51% was decreased in severe neuropathology, compared to controls. Importantly, Sirt-1-bound genes in controls largely participate in neuroinflammation. Promoters of type I IFN pathway genes IRF7, IRF1, IFIT1, and AIF1, showed Sirt-1 binding in controls, which was consistently lost after infection, together with higher transcription. Loss of Sirt-1 binding was also found in brains from old uninfected animals, suggesting a common regulation. The role of Sirt-1 in regulating these inflammatory markers was confirmed in two different in vitro models, where Sirt-1 blockage modulated IRF7, IRF1 and AIF1 levels both in human macrophage cell lines and in human blood-derived monocytes from various normal donors, stimulated with a TLR9 agonist. Our data suggests that Sirt-1-inflammatory gene silencing is disturbed by SIV infection, resembling aging in brains. These findings may impact our knowledge on the contribution of myeloid subsets to the neurological consequences of HIV infection, aggravated and overlapping with the aging process.
Insights
Sirt-1 (Silent information regulator 1) gene silencing is disrupted in SIV infection, mirroring brain aging. This impacts myeloid cells, potentially worsening HIV-associated neurological damage.
Area of Science:
- Neuroimmunology
- Molecular Biology
- Virology
Background:
- Microglia and macrophages are key myeloid cells in the brain, regulating neuroinflammation.
- HIV infection causes neurological issues resembling aging.
- Sirt-1 is a molecule linked to survival and health, but its role in neuroAIDS is unclear.
Purpose of the Study:
- To investigate the role of Sirt-1 in SIV infection and its impact on brain myeloid cells.
- To explore if SIV infection alters Sirt-1 binding patterns and gene regulation.
- To compare SIV-induced changes in the brain with those observed in aging.
Main Methods:
- Utilized a SIV infection model in rhesus macaques to study neuroAIDS.
- Quantified Sirt-1 levels in brain myeloid cells.
- Mapped Sirt-1 chromatin binding patterns and analyzed gene expression.
- Validated findings using in vitro models with human macrophage and monocyte cell lines.
Main Results:
- Sirt-1 levels were decreased in SIV-infected macaques.
- Sirt-1 binding to inflammatory genes (e.g., IRF7, IRF1) was lost after SIV infection, correlating with increased gene transcription.
- This loss of Sirt-1 binding and altered gene regulation was also observed in aged, uninfected animals.
- In vitro studies confirmed Sirt-1's role in regulating inflammatory gene expression.
Conclusions:
- SIV infection disrupts Sirt-1's ability to silence inflammatory genes in brain myeloid cells, a process similar to aging.
- This dysregulation may contribute to the neurological consequences of HIV infection, especially in older individuals.
- Findings highlight the contribution of myeloid cell dysfunction to neuroAIDS pathogenesis.
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