Cargando…

HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV

AIM: Activation of microglial NLRP3 inflammasome is an essential contributor to neuroinflammation underlying HIV-associated neurological disorders (HAND). Under pathological conditions, microglia-derived-EVs (MDEVs) can affect neuronal functions by delivering neurotoxic mediators to recipient cells....

Descripción completa

Detalles Bibliográficos
Autores principales: Kannan, Muthukumar, Singh, Seema, Chemparathy, Divya T., Oladapo, Abiola A., Gawande, Dinesh Y., Dravid, Shashank M., Buch, Shilpa, Sil, Susmita
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9937449/
https://www.ncbi.nlm.nih.gov/pubmed/36812097
http://dx.doi.org/10.20517/evcna.2022.14
_version_ 1784890426795229184
author Kannan, Muthukumar
Singh, Seema
Chemparathy, Divya T.
Oladapo, Abiola A.
Gawande, Dinesh Y.
Dravid, Shashank M.
Buch, Shilpa
Sil, Susmita
author_facet Kannan, Muthukumar
Singh, Seema
Chemparathy, Divya T.
Oladapo, Abiola A.
Gawande, Dinesh Y.
Dravid, Shashank M.
Buch, Shilpa
Sil, Susmita
author_sort Kannan, Muthukumar
collection PubMed
description AIM: Activation of microglial NLRP3 inflammasome is an essential contributor to neuroinflammation underlying HIV-associated neurological disorders (HAND). Under pathological conditions, microglia-derived-EVs (MDEVs) can affect neuronal functions by delivering neurotoxic mediators to recipient cells. However, the role of microglial NLRP3 in mediating neuronal synaptodendritic injury has remained unexplored to date. In the present study, we sought to assess the regulatory role of HIV-1 Tat induced microglial NLRP3 in neuronal synaptodendritic injury. We hypothesized that HIV-1 Tat mediated microglia EVs carrying significant levels of NLRP3 contribute to the synaptodendritic injury, thereby affecting the maturation of neurons. METHODS: To understand the cross-talk between microglia and neuron, we isolated EVs from BV2 and human primary microglia (HPM) cells with or without NLRP3 depletion using siNLRP3 RNA. EVs were isolated by differential centrifugation, characterized by ZetaView nanoparticle tracking analysis, electron microscopy, and western blot analysis for exosome markers. Purified EVs were exposed to primary rat neurons isolated from E18 rats. Along with green fluorescent protein (GFP) plasmid transfection, immunocytochemistry was performed to visualize neuronal synaptodendritic injury. Western blotting was employed to measure siRNA transfection efficiency and the extent of neuronal synaptodegeneration. Images were captured in confocal microscopy, and subsequently, Sholl analysis was performed for analyzing dendritic spines using neuronal reconstruction software Neurolucida 360. Electrophysiology was performed on hippocampal neurons for functional assessment. RESULTS: Our findings demonstrated that HIV-1 Tat induced expression of microglial NLRP3 and IL1β, and further that these were packaged in microglial exosomes (MDEV) and were also taken up by the neurons. Exposure of rat primary neurons to microglial Tat-MDEVs resulted in downregulation of synaptic proteins- PSD95, synaptophysin, excitatory vGLUT1, as well as upregulation of inhibitory proteins- Gephyrin, GAD65, thereby implicating impaired neuronal transmissibility. Our findings also showed that Tat-MDEVs not only caused loss of dendritic spines but also affected numbers of spine sub-types- mushroom and stubby. Synaptodendritic injury further affected functional impairment as evidenced by the decrease in miniature excitatory postsynaptic currents (mEPSCs). To assess the regulatory role of NLRP3 in this process, neurons were also exposed to Tat-MDEVs from NLRP3 silenced microglia. Tat-MDEVs from NLRP3 silenced microglia exerted a protective role on neuronal synaptic proteins, spine density as well as mEPSCs. CONCLUSION: In summary, our study underscores the role of microglial NLRP3 as an important contributor to Tat-MDEV mediated synaptodendritic injury. While the role of NLRP3 in inflammation is well-described, its role in EV-mediated neuronal damage is an interesting finding, implicating it as a target for therapeutics in HAND.
format Online
Article
Text
id pubmed-9937449
institution National Center for Biotechnology Information
language English
publishDate 2022
record_format MEDLINE/PubMed
spelling pubmed-99374492023-02-17 HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV Kannan, Muthukumar Singh, Seema Chemparathy, Divya T. Oladapo, Abiola A. Gawande, Dinesh Y. Dravid, Shashank M. Buch, Shilpa Sil, Susmita Extracell Vesicles Circ Nucl Acids Article AIM: Activation of microglial NLRP3 inflammasome is an essential contributor to neuroinflammation underlying HIV-associated neurological disorders (HAND). Under pathological conditions, microglia-derived-EVs (MDEVs) can affect neuronal functions by delivering neurotoxic mediators to recipient cells. However, the role of microglial NLRP3 in mediating neuronal synaptodendritic injury has remained unexplored to date. In the present study, we sought to assess the regulatory role of HIV-1 Tat induced microglial NLRP3 in neuronal synaptodendritic injury. We hypothesized that HIV-1 Tat mediated microglia EVs carrying significant levels of NLRP3 contribute to the synaptodendritic injury, thereby affecting the maturation of neurons. METHODS: To understand the cross-talk between microglia and neuron, we isolated EVs from BV2 and human primary microglia (HPM) cells with or without NLRP3 depletion using siNLRP3 RNA. EVs were isolated by differential centrifugation, characterized by ZetaView nanoparticle tracking analysis, electron microscopy, and western blot analysis for exosome markers. Purified EVs were exposed to primary rat neurons isolated from E18 rats. Along with green fluorescent protein (GFP) plasmid transfection, immunocytochemistry was performed to visualize neuronal synaptodendritic injury. Western blotting was employed to measure siRNA transfection efficiency and the extent of neuronal synaptodegeneration. Images were captured in confocal microscopy, and subsequently, Sholl analysis was performed for analyzing dendritic spines using neuronal reconstruction software Neurolucida 360. Electrophysiology was performed on hippocampal neurons for functional assessment. RESULTS: Our findings demonstrated that HIV-1 Tat induced expression of microglial NLRP3 and IL1β, and further that these were packaged in microglial exosomes (MDEV) and were also taken up by the neurons. Exposure of rat primary neurons to microglial Tat-MDEVs resulted in downregulation of synaptic proteins- PSD95, synaptophysin, excitatory vGLUT1, as well as upregulation of inhibitory proteins- Gephyrin, GAD65, thereby implicating impaired neuronal transmissibility. Our findings also showed that Tat-MDEVs not only caused loss of dendritic spines but also affected numbers of spine sub-types- mushroom and stubby. Synaptodendritic injury further affected functional impairment as evidenced by the decrease in miniature excitatory postsynaptic currents (mEPSCs). To assess the regulatory role of NLRP3 in this process, neurons were also exposed to Tat-MDEVs from NLRP3 silenced microglia. Tat-MDEVs from NLRP3 silenced microglia exerted a protective role on neuronal synaptic proteins, spine density as well as mEPSCs. CONCLUSION: In summary, our study underscores the role of microglial NLRP3 as an important contributor to Tat-MDEV mediated synaptodendritic injury. While the role of NLRP3 in inflammation is well-described, its role in EV-mediated neuronal damage is an interesting finding, implicating it as a target for therapeutics in HAND. 2022 2022-05-31 /pmc/articles/PMC9937449/ /pubmed/36812097 http://dx.doi.org/10.20517/evcna.2022.14 Text en https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, sharing, adaptation, distribution and reproduction in any medium or format, for any purpose, even commercially, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Article
Kannan, Muthukumar
Singh, Seema
Chemparathy, Divya T.
Oladapo, Abiola A.
Gawande, Dinesh Y.
Dravid, Shashank M.
Buch, Shilpa
Sil, Susmita
HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title_full HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title_fullStr HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title_full_unstemmed HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title_short HIV-1 Tat induced microglial EVs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in NeuroHIV
title_sort hiv-1 tat induced microglial evs leads to neuronal synaptodendritic injury: microglia-neuron cross-talk in neurohiv
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9937449/
https://www.ncbi.nlm.nih.gov/pubmed/36812097
http://dx.doi.org/10.20517/evcna.2022.14
work_keys_str_mv AT kannanmuthukumar hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT singhseema hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT chemparathydivyat hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT oladapoabiolaa hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT gawandedineshy hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT dravidshashankm hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT buchshilpa hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv
AT silsusmita hiv1tatinducedmicroglialevsleadstoneuronalsynaptodendriticinjurymicroglianeuroncrosstalkinneurohiv