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Cell-based Assay to Study Antibody-mediated Tau Clearance by Microglia
Published on: November 9, 2018
Microglial motility in Alzheimer's disease and after Aβ42 immunotherapy: a human post-mortem study
Diana K Franco-Bocanegra1, Bethany George1, Laurie C Lau2
1Clinical Neurosciences, Clinical and Experimental Sciences Academic Unit, Faculty of Medicine, University of Southampton, Southampton General Hospital, Mailpoint 806, Southampton, SO16 6YD, UK.
Abstract:
Microglial function is highly dependent on cell motility, with baseline motility required for homeostatic surveillance activity and directed motility to migrate towards a source of injury. Experimental evidence suggests impaired microglial motility in Alzheimer's disease (AD) and therefore we have investigated whether the expression of proteins associated with motility is altered in AD and affected by the Aβ immunotherapy using post-mortem brain tissue of 32 controls, 44 AD cases, and 16 AD cases from our unique group of patients immunised against Aβ42 (iAD).Sections of brain were immunolabelled and quantified for (i) the motility-related microglial proteins Iba1, cofilin 1 (CFL1), coronin-1a (CORO1A) and P2RY12, and (ii) pan-Aβ, Aβ42 and phosphorylated tau (ptau). The neuroinflammatory environment was characterised using Meso Scale Discovery multiplex assays. The expression of all four motility-related proteins was unmodified in AD compared with controls, whereas Iba1 and P2RY12, the homeostatic markers, were increased in the iAD group compared with AD. Iba1 and P2RY12 showed significant positive correlations with Aβ in controls but not in the AD or iAD groups. Pro- and anti-inflammatory proteins were increased in AD, whereas immunotherapy appears to result in a slightly less pro-inflammatory environment.Our findings suggest that as Aβ appears during the ageing process, the homeostatic Iba1 and P2RY12 -positive microglia respond to Aβ, but this response is absent in AD. Aβ-immunisation promoted increased Iba1 and P2RY12 expression, likely reflecting increased baseline microglial motility but without restoring the profile observed in controls.
Insights
Microglial motility proteins remain unchanged in Alzheimer's disease (AD). However, Aβ immunotherapy increased homeostatic markers Iba1 and P2RY12 in AD patients, suggesting enhanced microglial activity without fully restoring control levels.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial motility is crucial for brain homeostasis and injury response.
- Impaired microglial motility is implicated in Alzheimer's disease (AD) pathogenesis.
- Investigating motility protein expression in AD and Aβ immunotherapy is essential.
Purpose of the Study:
- To determine if motility-related protein expression is altered in AD brains.
- To assess the impact of Aβ immunotherapy on microglial motility proteins in AD.
- To correlate protein expression with amyloid-beta (Aβ) and tau pathology.
Main Methods:
- Post-mortem brain tissue analysis from controls, AD patients, and Aβ-immunized AD patients (iAD).
- Immunolabeling and quantification of microglial motility proteins (Iba1, CFL1, CORO1A, P2RY12) and AD pathology markers (Aβ, ptau).
- Meso Scale Discovery assays to characterize the neuroinflammatory environment.
Main Results:
- Expression of Iba1, CFL1, CORO1A, and CORO1A was unchanged in AD compared to controls.
- Iba1 and P2RY12 (homeostatic markers) were elevated in iAD compared to AD.
- Iba1 and P2RY12 correlated positively with Aβ in controls, but not in AD or iAD groups.
- Neuroinflammation markers were increased in AD, with immunotherapy showing a trend towards a less pro-inflammatory state.
Conclusions:
- Microglial motility protein expression is not altered in AD, but homeostatic markers Iba1 and P2RY12 increase post-Aβ immunotherapy.
- Aβ immunotherapy may enhance microglial motility in AD, but does not fully restore the homeostatic microglial profile seen in controls.
- The study highlights altered microglial responses to Aβ in AD and the partial effects of immunotherapy on microglial function.

