Translational profiling identifies sex‐specific metabolic and epigenetic reprogramming of microglia in cerebral amyloidosis models with an antibiotic‐altered gut microbiome. (20th December 2022)
- Record Type:
- Journal Article
- Title:
- Translational profiling identifies sex‐specific metabolic and epigenetic reprogramming of microglia in cerebral amyloidosis models with an antibiotic‐altered gut microbiome. (20th December 2022)
- Main Title:
- Translational profiling identifies sex‐specific metabolic and epigenetic reprogramming of microglia in cerebral amyloidosis models with an antibiotic‐altered gut microbiome
- Authors:
- Shaik, Shabana M
Cao, Yajun
Dodiya, Hemraj B.
Zhang, Xulun
Boutej, Hejer
Han, Weinong
Kriz, Jasna
Sisodia, Sangram S. - Abstract:
- Abstract: Background: Microglia, the brain‐resident macrophages perform immune surveillance and engage in pathological processes by changing their phenotype and maintain homeostasis. Previously, we showed that antibiotic‐mediated changes in the gut microbiome of APPPS1‐21 transgenic mice resulted in significant decrease in amyloidosis and altered microglial phenotype that are specific to male mice. The molecular events underlying microglial phenotypic transition remain unclear due to lack of models that allow reliable in vivo proteomics. Here, we generated 'APPPS1‐21‐CD11br' microglia reporter mice and assessed their protein networks during their phenotypic transition in a sex‐specific manner. Method: Six groups of mice that included WT‐CD11br, antibiotic (ABX) or vehicle‐treated APPPS1‐21‐CD11br male and female were sacrificed at 7‐weeks of age (n=15/group) and used for immunoprecipitation of microglial polysomes from cortical homogenates using anti‐FLAG antibody. Liquid chromatography coupled to tandem mass spectrometry (LC‐MSMS) and label‐free quantification was used to identify newly synthesized peptides extracted from polysomes Result: We showed ABX‐treatment led to reduced Ab levels in male APPPS1‐21‐CD11br mice with no significant changes in the females. We first identified sex‐specific oxidative stress induced by Ab peptides leading to mitochondrial dysfunction and altered calcium signaling. Notably, the female mice also showed dysregulation of ribosomal machinery.Abstract: Background: Microglia, the brain‐resident macrophages perform immune surveillance and engage in pathological processes by changing their phenotype and maintain homeostasis. Previously, we showed that antibiotic‐mediated changes in the gut microbiome of APPPS1‐21 transgenic mice resulted in significant decrease in amyloidosis and altered microglial phenotype that are specific to male mice. The molecular events underlying microglial phenotypic transition remain unclear due to lack of models that allow reliable in vivo proteomics. Here, we generated 'APPPS1‐21‐CD11br' microglia reporter mice and assessed their protein networks during their phenotypic transition in a sex‐specific manner. Method: Six groups of mice that included WT‐CD11br, antibiotic (ABX) or vehicle‐treated APPPS1‐21‐CD11br male and female were sacrificed at 7‐weeks of age (n=15/group) and used for immunoprecipitation of microglial polysomes from cortical homogenates using anti‐FLAG antibody. Liquid chromatography coupled to tandem mass spectrometry (LC‐MSMS) and label‐free quantification was used to identify newly synthesized peptides extracted from polysomes Result: We showed ABX‐treatment led to reduced Ab levels in male APPPS1‐21‐CD11br mice with no significant changes in the females. We first identified sex‐specific oxidative stress induced by Ab peptides leading to mitochondrial dysfunction and altered calcium signaling. Notably, the female mice also showed dysregulation of ribosomal machinery. Further, microglial polypeptides were associated with FcgR‐mediated phagocytosis in male mice and actin organization in female mice. Interestingly, ABX‐treatment resulted in substantial remodeling of epigenetic landscape for metabolic shift to accommodate increased bioenergetic and biosynthetic demands associated with microglial polarization in a sex‐specific manner. The male mice showed glycolytic shift for neuroprotective phenotype to promote Aβ clearance. However, the female mice showed loss of energy homeostasis due to persistent mitochondrial dysfunction associated with impaired lysosomal clearance and inflammatory phenotype. Conclusion: Our studies provide first snapshot of the dynamic translational state of microglial cells in a sex‐specific manner. We identified that antibiotic‐mediated changes in gut microbiome results in metabolic reprogramming of microglial phenotypes to modulate immune responses and amyloid clearance. This microglial plasticity to support neuro‐energetic homeostasis for its function based on sex, paves the path for therapeutic modulation of immunometabolism for neurodegeneration. … (more)
- Is Part Of:
- Alzheimer's & dementia. Volume 18(2022)Supplement 4
- Journal:
- Alzheimer's & dementia
- Issue:
- Volume 18(2022)Supplement 4
- Issue Display:
- Volume 18, Issue 4 (2022)
- Year:
- 2022
- Volume:
- 18
- Issue:
- 4
- Issue Sort Value:
- 2022-0018-0004-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2022-12-20
- Subjects:
- Alzheimer's disease -- Periodicals
Alzheimer Disease -- Periodicals
Dementia -- Periodicals
Démence
Maladie d'Alzheimer
Périodique électronique (Descripteur de forme)
Ressource Internet (Descripteur de forme)
616.83 - Journal URLs:
- http://www.sciencedirect.com/science/journal/15525260 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1002/alz.059695 ↗
- Languages:
- English
- ISSNs:
- 1552-5260
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
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- British Library DSC - 0806.255333
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