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Diesel exhaust particles disrupt mouse and human iPSC-derived microglial function and Amyloid-beta clearance in Alzheimer's disease models

Yan, H.; Bhat, Y.; Malahov, P.; Sabogal-Guaqueta, A. M.; Mitchell-Garcia, T.; Chen, T.; Genestant, E.; Ivesa, M.; Nebbia, R.; Gadjdjoe, P. S.; Ohtonen, S.; Malm, T.; Guillonneau, X.; Schmidt, M.; Dolga, A. M.

2026-07-23 neuroscience
10.64898/2026.07.20.739493 bioRxiv
Show abstract

Alzheimers disease (AD) is one of the most common neurodegenerative disorders, yet the environmental drivers that accelerate its progression remain poorly defined. Traffic-related air pollution is emerging as a modifiable AD risk factor, but how inhaled particles perturb microglial clearance of amyloid beta (A{beta}) is unknown. Microglia are the principal A{beta}-clearing phagocytes of the brain. Here, we showed that exposure of primary mouse microglia and human induced pluripotent stem cell-derived microglia (iMGLs) to 3-100 {micro}g/mL diesel exhaust particles (DEP) disrupted microglial homeostasis, induced morphological abnormalities, increased reactive oxygen species, impaired lysosomal degradation, and led to a concentration-dependent loss of phagocytic capacity. Importantly, DEP markedly reduces A{beta} uptake in both species. Transcriptomic profiling revealed a DEP-induced, non-canonical state characterized by metabolic reprogramming, broad suppression of inflammatory pathways, antigen-presentation, chemokine, and species-specific remodeling during subsequent A{beta} challenge, including defective chemotaxis, cell cycle, and cytoskeletal signatures. These data show that DEP profoundly alters microglial transcriptional and metabolic states, leading to impaired A{beta} clearance, which could, thereby, further contribute to AD progression.

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