MicroRNA-223 Enhances Microglia-Dependent Clearance of Amyloid Beta Plaques and Ameliorates Behavioral Deficits in a Mouse Model of Alzheimer's Disease
Krunic, A.; Umesh Ganesh, N.; Coskun, U.; Brennan, W.; Patel, C.; Joshi, O.; Lee, J.; Gu, T. S.; Caruso, J.; O'Connell, A.; Lisboa, C.; Crossland, N.; Kurkela, M.; TCW, J.; Fowler, A. M.; Tay, T. L.; Fischer, A.; Delalle, I.; Blustajn, J. K.; Mellott, T. J.
Show abstract
The Alzheimers disease (AD) brain is characterized by dysregulated expression of multiple microRNAs (miRNA), positioning them as promising diagnostic and therapeutic targets. The levels of glia-enriched miR-223 are abnormal in the brains and plasma of AD patients and miR-223 is neuroprotective in models of stroke. However, whether miR-223 can be beneficial in AD is not known. Here, we report that intracerebroventricular (ICV) injection of miR-223 oligonucleotide mimic alleviated cognitive impairment, reduced amyloid beta (A{beta}) pathology, and ameliorated the defects in synaptic marker expression in AppNL-G-F AD model mice. Mechanistically, miR-223 induced microglial clustering around A{beta} plaques with a concomitant upregulation of microglial phagocytic receptors AXL, TREM2 and CD11c, while pharmacological microglial depletion abolished the plaque-clearance phenotype. Moreover, in human iPSC-derived microglia miR-223 directly targeted multiple genes in the endo-lysosomal pathway, including AD risk gene SPPL2A, indicating that it acts as a major regulator of microglial phenotype. Lastly, long-term AAV-mediated overexpression of miR-223 recapitulates its beneficial effects on cognition, pathology, and synaptic marker expression. Our study demonstrates a novel approach for the treatment of AD using miR-223 and highlights the potential of RNAi-based therapeutics in neurodegenerative disease.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Loss of function of the mitochondrial peptidase PITRM1 induces proteotoxic stress and Alzheimer's disease-like pathology in human cerebral organoids 97%
- Neural stem and progenitor cells support and protect adult hippocampal function via vascular endothelial growth factor secretion. 96%
- Alzheimer's genetic risk factor FERMT2 (Kindlin-2) controls axonal growth and synaptic plasticity in an APP-dependent manner. 95%
Similar papers in this journal
- β-Amyloid Induces Microglial Expression of GPC4 and APOE Leading to Increased Neuronal Tau Pathology and Toxicity 98%
- APOE Christchurch enhances a disease-associated microglial response to plaque but suppresses response to tau pathology 97%
- A Trem2*R47H mouse model without cryptic splicing drives age- and disease-dependent tissue damage and synaptic loss in response to plaques 97%
Similar papers in this journal
- Triglyceride metabolism controls inflammation and APOE4-associated disease states in microglia 97%
- Sustained TREM2 stabilization accelerates microglia heterogeneity and Abeta pathology in a mouse model of Alzheimer s disease 97%
- Natural genetic variation determines microglia heterogeneity in wild-derived mouse models of Alzheimer's disease 97%
Similar papers in this journal
- The Alzheimers Disease Risk Genes MS4A4A And MS4A6A Cooperate to Negatively Regulate Trem2 and Microglia states 97%
- Alzheimer's disease-linked risk alleles elevate microglial cGAS-associated senescence and neurodegeneration in a tauopathy model 97%
- Microglial Piezo1 senses Aβ fibrils stiffness to restrict Alzheimer's disease 96%
"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.