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Minimizing Hypoxia in Hippocampal Slices from Adult and Aging Mice
Published on: July 2, 2020
Global C3 lowering in adulthood protects against hippocampal dysfunction and cognitive impairment in aged mice
Andre F Batista1, Jessey Presumey2, Brijendra Singh1
1Department of Neurology, Ann Romney Center for Neurologic Diseases, Brigham and Women's Hospital, Boston, MA 02115, USA.
Insights
Reducing complement component 3 (C3) in adulthood protected against age-related cognitive decline and hippocampal dysfunction in mice. This suggests complement modulation may be a neuroprotective strategy for brain aging.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Complement component 3 (C3) plays a role in neurodegeneration, but its impact on age-related hippocampal dysfunction is not well understood.
- This study investigates the effects of inducible C3 knockdown in adult mice on hippocampal function.
Purpose of the Study:
- To investigate the effects of inducible C3 knockdown in adulthood on hippocampal function.
- To develop and utilize a novel inducible C3 knockdown mouse model (C3iKO) for studying C3's role in brain aging.
Main Methods:
- Developed a chimeric floxed C3 mouse line (C3fl/fl) crossed with Rosa-26-Cre-ERT2+/- mice to create C3iKO mice.
- Administered Tamoxifen (TAM) to young adult C3iKO mice to induce global C3 knockdown.
- Monitored serum C3 levels and assessed behavioral, molecular, and cellular changes in the brain, including synaptic density and gene expression.
Main Results:
- Inducible C3 knockdown sustained reduced C3 levels in serum, liver, and brain.
- Global C3 lowering decreased expression of inflammatory genes (C1q, C4b, IFNa, IFNb, APOE) and increased homeostatic genes (Tgfb1, Tgfbr1) in the brain.
- C3 knockdown conferred neuroprotection against age-related cognitive decline, enhancing hippocampal synaptic density, dendritic spine formation, and synaptic protein levels. It also rescued Aβ-oligomer-induced impairments in long-term potentiation.
Conclusions:
- Global C3 lowering in adulthood effectively reduced C3 levels and protected the brain against age-associated hippocampal dysfunction and cognitive decline.
- Complement modulation represents a potential neuroprotective strategy against brain aging.
- The C3iKO mouse model is a valuable tool for studying C3's role in age-related neurodegeneration and Alzheimer's disease.
Background:
Complement component 3 (C3) is increasingly recognized for its role in neurodegenerative processes; however, its specific impact on age-related hippocampal dysfunction remains poorly understood. This study investigates the effects of inducible C3 knockdown in adulthood on hippocampal function using a novel mouse model.
Methods:
We developed a chimeric floxed C3 mouse line (C3fl/fl ) and crossed it with Rosa-26-Cre-ERT2+/- mice, resulting in C3fl/fl ; Rosa-26-Cre-ERT2+/- (C3iKO) mice that allow for global C3 knockdown via Tamoxifen (TAM) administration at any age. Young adult female and male C3iKO mice were treated with TAM or corn oil (CO) as a control, to induce global C3 lowering in 4 cohorts of mice. Serum C3 levels were monitored throughout the lifespan for all cohorts. Other outcome measures varied by cohort and included behavior, C3 mRNA and protein levels in brain, C1q levels, immune gene expression in brain, gliosis, synaptic changes in hippocampus.
Results:
TAM treatment led to a sustained reduction in C3 levels in serum, liver, and brain tissues of C3iKO mice. Global C3 lowering was associated with reduced expression of C1q, C4b, IFNa, IFNb,and APOE, and increase expression of homeostatic genes Tgfb1 and Tgfbr1 in mouse brain one-year following TAM treatment. Notably, C3 lowering in adulthood conferred significant neuroprotection against age-related cognitive decline, which corresponded to increased hippocampal synaptic density and dendritic spine formation and increased pre-synaptic proteins in hippocampal synaptosomes. Moreover, long-term potentiation (LTP) impairments induced by Aβ-oligomers were rescued following C3 knockdown, highlighting potential therapeutic implications.
Conclusion:
Our C3iKO mouse model was consistently effective in lowering C3 levels in the brain and periphery in mice. The findings reported here demonstrate that global C3 lowering in adulthood, after brain development, protected the brain against age-associated hippocampal dysfunction and cognitive decline, suggesting that complement modulation may provide a neuroprotective strategy against brain aging. The C3iKO model provides a valuable platform for understanding the role of complement C3 in age-related neurodegenerative conditions, including Alzheimer's disease. Further studies are needed to better understand these neuroprotective effects in models of neurodegeneration and to assess the therapeutic potential of complement modulation in the brain.
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