The Alzheimer's disease protective P522R variant of PLCG2, consistently enhances stimulus-dependent PLCγ2 activation, depleting substrate and altering cell function.
Maguire, E.; Menzies, G. E.; Phillips, T.; Sasner, M.; Williams, H. M.; Czubala, M. A.; Evans, N.; Cope, E. L.; Sims, R. C.; Howell, G.; Lloyd-Evans, E.; Williams, J.; Allen, N. D.; Taylor, P. R.
Show abstract
Recent genome-wide association studies of Alzheimers disease (AD) have identified variants implicating immune pathways in disease development. A rare coding variant of PLCG2, which encodes PLC{gamma}2, shows a significant protective effect for AD (rs72824905, P522R, P=5.38x10-10, Odds Ratio = 0.68). Molecular dynamic modelling of the PLC{gamma}2-R522 variant, situated within the auto-inhibitory domain of PLC{gamma}2, suggests a structural change to the protein. Through CRISPR-engineering we have generated novel PLCG2-R522 harbouring human induced pluripotent cell lines (hiPSC) and a mouse knockin model, neither of which exhibits alterations in endogenous PLCG2 expression. Mouse microglia and macrophages and hiPSC-derived microglia-like cells with the R522 mutation, all demonstrate a consistent non-redundant hyperfunctionality in the context of normal expression of other PLC isoforms. This signalling alteration manifests as enhanced cellular Ca2+ store release ([~]20-40% increase) in response to physiologically-relevant stimuli (e.g. Fc receptor ligation and A{beta} oligomers). This hyperfunctionality resulted in increased PIP2 depletion in the cells with the PLC{gamma}2-R522 variant after exposure to stimuli and reduced basal detection of PIP2 levels in vivo. These PLC{gamma}2-R522 associated abnormalities resulted in impairments to phagocytosis (fungal and bacterial particles) and enhanced endocytosis (A{beta} oligomers and dextran). PLC{gamma}2 sits downstream of disease relevant pathways, such as TREM2 and CSF1R and alterations in its activity, direct impacts cell function, which in the context of the inherent drugability of enzymes such as PLC{gamma}2, raise the prospect of manipulation of PLC{gamma}2 as a therapeutic target in Alzheimers Disease.
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The Alzheimer's disease gene SORL1 regulates lysosome function in human microglia 97%
- Astrocytic uptake of posttranslationally modified amyloid-β leads to endolysosomal system disruption and induction of pro-inflammatory signaling 96%
- Low-grade systemic inflammation stimulates microglial turnover and accelerates the onset of Alzheimer's-like pathology 95%
Similar papers in this journal
- A multifaceted role of progranulin in regulating amyloid-beta dynamics and responses 96%
- Frataxin Deficiency Drives a Shift from Mitochondrial Metabolism to Glucose Catabolism, Triggering an Inflammatory Phenotype in Microglia 95%
- Syk activation during FcγR-mediated phagocytosis involves Syk palmitoylation and desulfenylation 94%
Similar papers in this journal
- Cystatin F (Cst7) drives sex-dependent changes in microglia in an amyloid-driven model of Alzheimer's Disease 96%
- A novel monomeric amyloid β-activated signaling pathway regulates brain development via inhibition of microglia 95%
- The delayed kinetics of Myddosome formation explains why Aβ aggregates trigger TLR4 less efficiently than LPS 95%
Similar papers in this journal
- Wild-type sTREM2 blocks Aβ aggregation and neurotoxicity, while the Alzheimer's R47H mutant does the opposite 95%
- The eIF2α kinase HRI triggers the autophagic clearance of cytosolic protein aggregates 94%
- JNK activity modulates postsynaptic scaffold protein SAP102 and kainate receptor dynamics in dendritic spines 94%
Similar papers in this journal
- ApoE4 disrupts interaction of sortilin with fatty acid-binding protein 7 essential to promote lipid signaling 96%
- Trafficking Machinery is Rapidly Primed to Facilitate Polarised IL-6 Secretion in Dendritic Cells 94%
- Nuclear-injuries by aberrant dynein-forces defeat proteostatic purposes of Lewy Body Inclusions 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.