Genome-wide CRISPR screen identifies neddylation as a regulator of neuronal aging and AD neurodegeneration.

Saurat, Nathalie; Minotti, Andrew P; Rahman, Maliha T; Sikder, Trisha; Zhang, Chao; Cornacchia, Daniela; Jungverdorben, Johannes; Ciceri, Gabriele et al. · Cell Stem Cell · 2024

basic_science · Level V

Where this comes from

Abstract

Aging is the biggest risk factor for the development of Alzheimer's disease (AD). Here, we performed a whole-genome CRISPR screen to identify regulators of neuronal age and show that the neddylation pathway regulates both cellular age and AD neurodegeneration in a human stem cell model. Specifically, we demonstrate that blocking neddylation increased cellular hallmarks of aging and led to an increase in Tau aggregation and phosphorylation in neurons carrying the APP<sup>swe/swe</sup> mutation. Aged APP<sup>swe/swe</sup> but not isogenic control neurons also showed a progressive decrease in viability. Selective neuronal loss upon neddylation inhibition was similarly observed in other isogenic AD and in Parkinson's disease (PD) models, including PSEN<sup>M146V/M146V</sup> cortical and LRRK2<sup>G2019S</sup><sup>/G2019S</sup> midbrain dopamine neurons, respectively. This study indicates that cellular aging can reveal late-onset disease phenotypes, identifies new potential targets to modulate AD progression, and describes a strategy to program age-associated phenotypes into stem cell models of disease.

Medical subject headings