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Bid regulates the immunological profile of murine microglia and macrophages
Lior Mayo1, Ayelet Levy, Jasmine Jacob-Hirsch
1Department of Neurobiology, George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv, Israel.
Abstract:
Apoptosis is a controlled cell-death process mediated inter alia by proteins of the Bcl-2 family. Some proteins previously shown to promote the apoptotic process were found to have nonapoptotic functions as well. Microglia, the resident immune cells of the central nervous system, respond to brain derangements by becoming activated to contend with the brain damage. Activated microglia can also undergo activation-induced cell death. Previous studies have addressed the role of core apoptotic proteins in the death process, but whether these proteins also play a role or not in the activation process is not been reported. Here we explore the effect of the BH3-only protein Bid on the immunological features of microglia and macrophages. Our results showed that Bid regulates both the phagocytotic activities and the inflammatory profiles of these cells. Deficiency of Bid attenuated the phagocytotic activity of primary microglia and peritoneal macrophages. It also changed the expression profile of distinct inflammation-related genes in lipopolysaccharide-activated microglia and peritoneal macrophages in vitro and in an in vivo sepsis-like paradigm. Notably, similar changes followed downregulation of Bid in the N9 microglial cell line. Cell death could not be detected in any of the systems examined. Our findings demonstrate that Bid can regulate the immunological profiles of activated microglial and macrophages, via a novel nonapoptotic activity. In view of the critical role of these cells in various pathologies, including acute and chronic brain insults, our findings suggest that impairments in Bid expression may contribute to these pathologies also via a nonapoptotic activity.
Insights
The BH3-only protein Bid regulates microglial and macrophage immune functions, including phagocytosis and inflammation, through a novel nonapoptotic mechanism. This finding highlights Bid
Area of Science:
- Immunology
- Cell Biology
- Neuroscience
Background:
- Apoptosis is a programmed cell death process involving Bcl-2 family proteins.
- Microglia, the brain's immune cells, activate in response to injury and can undergo cell death.
- The non-apoptotic roles of apoptotic proteins in microglial activation are largely unknown.
Purpose of the Study:
- To investigate the effect of the BH3-only protein Bid on microglial and macrophage immunological features.
- To determine if Bid plays a role in microglial activation beyond apoptosis.
Main Methods:
- Examined the impact of Bid deficiency and downregulation on primary microglia, peritoneal macrophages, and the N9 microglial cell line.
- Assessed phagocytotic activity and the expression of inflammation-related genes in response to stimuli like lipopolysaccharide.
- Utilized in vitro and in vivo (sepsis-like paradigm) models.
Main Results:
- Bid deficiency attenuated phagocytotic activity in microglia and macrophages.
- Bid modulation altered the inflammatory gene expression profiles in activated microglia and macrophages.
- No evidence of cell death was observed in any experimental system, indicating a non-apoptotic function.
Conclusions:
- Bid regulates microglial and macrophage immunological profiles through a novel non-apoptotic mechanism.
- Impairments in Bid expression may contribute to brain pathologies via this non-apoptotic activity.
- Bid's non-apoptotic functions in immune cells have implications for understanding and treating neurological disorders.
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