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Ghaffari, D.

Publications and source records attributed to Ghaffari, D..

2 recordsLinked to original sources

CD33 and Clusterin Interact Biophysically and Genetically to Modulate Alzheimer Risk

We report the results of structural, functional and genetic studies on the CD33 sialic acid- binding receptor that reveal how non-coding variants in CD33 alter risk for Alzheimers disease (AD). The full-length CD33M isoform, whose expression is upregulated by non-coding AD-risk alleles, preferentially forms dimers at the cell surface, where they interact with AD-related proteins (clusterin and A{beta}). This interaction induces CD33M inhibitory signalling and downregulates protective microglial functions including phagocytic removal of amyloid plaques. Human brain expression quantitative trait loci (eQTL) and causal mediation analyses confirm that quantitative interactions between CLU and CD33 genotypes modulate AD phenotypes and suggest that genotypes at these loci might be used to personalise future therapeutic approaches. Our work also highlights several other unexpected aspects of CD33 biology, including a soluble shed extracellular fragment of CD33M and a similar soluble secreted product arising from a truncating mutation in the CD33 extracellular domain (CD33M{Delta}4bp).

neuroscience↗

ABI3 deletion in TgCRND8 mice is associated with reduced amyloid plaque pathology and altered glial response.

Recent genome-wide association studies (GWAS) have identified several rare coding variants in a cluster of immune-related genes that are significantly associated with Alzheimers disease. This includes the risk variant (S209F) in ABI3, a gene encoding the Abl Interactor family member 3 protein that is highly expressed in microglia, but little is known about its function in these cells and its association with AD. We have investigated the effects of ABI3 deletion on AD pathological features in the transgenic (Tg) CRND8 APP mouse model by immunofluorescence (IF) staining and confocal microscopy. We have observed that ABI3 expression is localized to microglia in the mouse brain and that the ABI3 immunoreactivity levels are increased in the TgCRND8 mice. The loss of ABI3 leads to a significant reduction of amyloid plaque numbers and size in the 9-month-old TgCRND8 mice. This is also accompanied by a reduced number of microglia clustering around the plaques. On the basis of these observations, we hypothesize that the loss of ABI3 may lead to changes in microglial behavior which directly or indirectly leads to reduced AD pathology in mice.

neuroscience↗