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Anti-α4β1 Integrin Antibodies Attenuated Brain Inflammatory Changes in a Mouse Model of Alzheimer's Disease
Gunjan Manocha1, Atreyi Ghatak1, Kendra Puig2
1Department of Biomedical Sciences, University of North Dakota, School of Medicine and Health Sciences, Grand Forks, North Dakota, ND 58202, United States.
Background:
Alzheimer's disease (AD) is associated with age-associated central nervous system degeneration and dementia. This decline in the function correlates with deposition of Aβ peptide containing plaques and associated reactive gliosis. The inflammatory phenotype of microglia, in particular, is often considered detrimental to cognitive function in AD. In addition to the changes in the CNS, altered immune changes in the periphery have recently been observed in AD suggesting a critical immune- related communication between the periphery and the brain.
Objective:
We hypothesized that modulating the peripheral immune system may alter the proinflammatory gliosis associated with AD. Therapeutic antibodies against the α4β1 integrin receptor have been used clinically to attenuate the ability of various immune cells to adhere to endothelium and migrate into target tissues such as the intestines (Crohn's disease) or brain (multiple sclerosis). We hypothesized that a similar peripheral antibody-based therapy would attenuate gliosis by altering immune cell infiltration or phenotype in peripheral organs and the brain using an APP/PS1 mouse model of Alzheimer's disease.
Method:
Littermate control wild-type and APP/PS1 mice were tail vein injected with either saline, isotype control (IgG2b), or an antibody recognizing α4-integrin, anti-CD49d, once a week for 4 consecutive weeks. To understand CNS and peripheral immune changes, brains and spleen were used.
Results/Conclusion:
Our data suggests that the antibody therapy was able to reduce microgliosis, astrogliosis, and synaptic changes in the APP/PS1 mice compared to isotype control injections without changing amyloid-β plaque load. Interestingly, both isotype control and antibody therapy also reduced the number of proinflammatory cytokines in the spleen although changes in the brain were less robust. The anti-CD49d and isotype control treatments also reduced CD4 immunoreactivity in the brains, suggesting a possible mechanism for attenuation of inflammation in the brain. This data suggests that it is indeed feasible to alter the immune component of AD brain changes using a clinically feasible strategy of delivering a particular subtype of IgG or epitope selective antibodies that target infiltration of the peripheral immune system.
Insights
Peripheral immune modulation may reduce Alzheimer's disease (AD) neuroinflammation. Antibody therapy targeting α4-integrin attenuated microgliosis and astrogliosis in a mouse model, suggesting a potential new AD treatment strategy.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Alzheimer's disease (AD) involves central nervous system degeneration, dementia, and amyloid-β plaque deposition.
- Reactive gliosis and microglial inflammation are hallmarks of AD, negatively impacting cognitive function.
- Emerging evidence suggests peripheral immune system alterations communicate with the brain in AD.
Purpose of the Study:
- To investigate if modulating the peripheral immune system can alter pro-inflammatory gliosis in Alzheimer's disease.
- To test the hypothesis that peripheral antibody therapy targeting α4β1 integrin can attenuate gliosis in an Alzheimer's disease mouse model.
- To explore the effects of anti-CD49d antibody therapy on immune cell infiltration and phenotype in the brain and periphery.
Main Methods:
- Utilized APP/PS1 transgenic mice, a model for Alzheimer's disease.
- Administered tail vein injections of saline, isotype control (IgG2b), or anti-CD49d antibody weekly for four weeks.
- Analyzed brain and spleen tissues to assess central nervous system (CNS) and peripheral immune changes.
Main Results:
- Antibody therapy significantly reduced microgliosis, astrogliosis, and synaptic changes in APP/PS1 mice compared to controls.
- Amyloid-β plaque load remained unchanged by the antibody treatment.
- Both antibody and isotype treatments reduced pro-inflammatory cytokines in the spleen and CD4 immunoreactivity in the brain.
Conclusions:
- Peripheral immune system modulation is a feasible strategy to alter brain changes in Alzheimer's disease.
- Antibody-based therapies targeting immune cell infiltration show promise for attenuating neuroinflammation in AD.
- Further research can explore clinically applicable antibody strategies for Alzheimer's disease treatment.