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Published on: September 19, 2010
Inflammatory responses revealed through HIV infection of microglia-containing cerebral organoids
Srinivas D Narasipura1, Janet P Zayas1, Michelle K Ash1
1Department of Microbial Pathogens and Immunity, Rush University Medical Center, Chicago, IL, USA.
Abstract:
Cerebral organoids (COs) are valuable tools for studying the intricate interplay between glial cells and neurons in brain development and disease, including HIV-associated neuroinflammation. We developed a novel approach to generate microglia containing COs (CO-iMs) by co-culturing hematopoietic progenitors and inducing pluripotent stem cells. This approach allowed for the differentiation of microglia within the organoids concomitantly with the neuronal progenitors. Compared with conventional COs, CO-iMs were more efficient at generating CD45+/CD11b+/Iba-1+ microglia and presented a physiologically relevant proportion of microglia (~ 7%). CO-iMs presented substantially increased expression of microglial homeostatic and sensome markers as well as markers for the complement cascade. CO-iMs are susceptible to HIV infection, resulting in a significant increase in several pro-inflammatory cytokines/chemokines, which are abrogated by the addition of antiretrovirals. Thus, CO-iM is a robust model for deciphering neuropathogenesis, neuroinflammation, and viral infections of brain cells in a 3D culture system.
Insights
Researchers developed novel microglia-containing cerebral organoids (CO-iMs) to model brain development and HIV-associated neuroinflammation. These organoids accurately mimic human brain cells and inflammatory responses in a 3D system.
Area of Science:
- Neuroscience
- Developmental Biology
- Immunology
Background:
- Cerebral organoids (COs) are crucial for studying brain development and disease.
- HIV-associated neuroinflammation presents significant challenges in understanding brain pathology.
- Existing models lack the cellular complexity to fully recapitulate in vivo brain microenvironments.
Purpose of the Study:
- To develop a novel 3D model for studying microglia-neuron interactions in the brain.
- To investigate HIV infection and neuroinflammation using a more physiologically relevant system.
- To establish a robust platform for deciphering neuropathogenesis and viral infections.
Main Methods:
- Co-culture of hematopoietic progenitors and induced pluripotent stem cells to generate microglia-containing cerebral organoids (CO-iMs).
- Differentiation of microglia and neuronal progenitors within the organoids.
- Assessment of microglial markers (CD45, CD11b, Iba-1), homeostatic markers, sensome markers, and complement cascade markers.
- HIV infection model to evaluate pro-inflammatory cytokine/chemokine responses and the effect of antiretrovirals.
Main Results:
- CO-iMs efficiently generated microglia (approx. 7%) with increased expression of homeostatic, sensome, and complement cascade markers.
- CO-iMs exhibited increased pro-inflammatory cytokines/chemokines upon HIV infection.
- Antiretroviral treatment abrogated the pro-inflammatory response in HIV-infected CO-iMs.
- The model demonstrated susceptibility to HIV infection, mirroring aspects of neuropathogenesis.
Conclusions:
- CO-iMs represent a robust and physiologically relevant 3D model for studying brain development, neuroinflammation, and viral infections.
- This model facilitates the investigation of microglia-neuron interactions in conditions like HIV-associated neuroinflammation.
- CO-iMs offer a valuable platform for testing therapeutic interventions against neuroinflammatory diseases and viral infections.
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