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Published on: October 18, 2024
HIV Tat-Stimulated Microglial Extracellular Vesicles Are Enriched for Ferroptosis Mediators: Role of Dysregulated
Seema Singh1, Elias Horanieh1, Craig L Semerad2
1Department of Pharmacology and Experimental Neuroscience University of Nebraska Medical Center Omaha Nebraska USA.
Abstract:
Extracellular vesicles (EVs) serve as conduits for intercellular communication, under both physiological and pathological contexts. During disease pathogenesis, microglia-derived EVs (MEVs) play a key role in transferring pathological cargo to the recipient cells, thereby modulating their phenotype and function. The current study was aimed to explore how HIV Transactivator of transcription (Tat) protein-mediated dysregulated autophagy/ferritinophagy contributes to the expression and release of ferroptotic mediators in Tat-activated MEVs. Exposure of microglial BV2 cells to HIV Tat for 48 h resulted in significantly increased expression of the ferroptosis mediators-FTH1 and ACSL4 in Tat-MEVs. Reciprocally, pretreatment of microglia with the ferroptosis inhibitors abrogated the expression and release of these mediators in both microglial cells as well as in Tat-MEVs, without affecting the overall MEV release. Furthermore, inhibition of autophagic flux with bafilomycin A1 resulted in potentiation of HIV Tat-mediated expression and release of ferroptosis mediators in Tat-MEVs. In contrast, treatment of cells with the autophagy inducer- rapamycin, attenuated these effects. Exposure of BV2 cells to HIV Tat also resulted in increased expression of the ferritinophagy adaptor protein NCOA4, an effect mitigated by both ferroptosis inhibitors and rapamycin. These findings were also validated in brain lysates as well as brain-derived MEVs isolated from HIV Transgenic rats. Collectively, this study highlights the role of dysregulated autophagy in modulating both HIV Tat-induced ferroptosis and the release of ferroptosis cargo in MEVs. These findings advance our understanding of the molecular mechanism(s) driving HIV-associated neuropathology.
Insights
Dysregulated autophagy in microglia influences HIV Tat-induced ferroptosis and the release of ferroptosis mediators via microglia-derived extracellular vesicles (MEVs), impacting HIV neuropathology.
Area of Science:
- Neuroscience
- Cell Biology
- Virology
Background:
- Extracellular vesicles (EVs) mediate intercellular communication, with microglia-derived EVs (MEVs) transferring pathological cargo during disease.
- HIV Transactivator of transcription (Tat) protein contributes to neuropathology, potentially through modulating microglial function and EV release.
Purpose of the Study:
- To investigate how HIV Tat protein-induced dysregulation of autophagy and ferritinophagy affects ferroptosis mediator expression and release in MEVs.
- To elucidate the role of autophagy in HIV Tat-mediated ferroptosis and cargo release in MEVs.
Main Methods:
- Exposure of microglial BV2 cells and HIV Transgenic rat brains to HIV Tat protein.
- Treatment with ferroptosis inhibitors, autophagy inhibitors (bafilomycin A1), and autophagy inducers (rapamycin).
- Analysis of ferroptosis mediators (FTH1, ACSL4), ferritinophagy adaptor (NCOA4), and MEV release.
Main Results:
- HIV Tat increased FTH1, ACSL4, and NCOA4 expression in Tat-MEVs and microglial cells.
- Ferroptosis inhibitors and rapamycin abrogated Tat-induced ferroptosis mediator expression and release.
- Inhibition of autophagy potentiated, while rapamycin attenuated, Tat-mediated ferroptosis mediator release in MEVs.
- Findings were validated in brain lysates and brain-derived MEVs from HIV Transgenic rats.
Conclusions:
- Dysregulated autophagy plays a critical role in modulating HIV Tat-induced ferroptosis and the release of ferroptosis mediators in MEVs.
- This study advances understanding of the molecular mechanisms underlying HIV-associated neuropathology.
- Targeting autophagy may offer therapeutic strategies for HIV-related neurological complications.
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