Stem Cell Reports · 2018 · 68 citations · 30 references
Brain DevelopmentNeurochemical BiomarkersAlzheimer-like PathogenesisAmyloid Precursor ProteinAmyloid AggregatesSynaptic SignalingSocial SciencesAlzheimer's DiseaseSynaptic NeuroscienceExperimental NeuropathologyDegenerative PathologyProtein MisfoldingNeurologyBrain PathologyNeurogeneticsDown SyndromeMolecular NeuroscienceNeurodegenerationGene ExpressionCell BiologyProtective MechanismsNeurodegenerative DiseasesDevelopmental BiologyCellular NeuroscienceNeuroscienceMolecular NeurobiologyMedicine
Early-onset Alzheimer disease (AD)-like pathology in Down syndrome is commonly attributed to an increased dosage of the amyloid precursor protein (APP) gene. To test this in an isogenic human model, we deleted the supernumerary copy of the APP gene in trisomic Down syndrome induced pluripotent stem cells or upregulated APP expression in euploid human pluripotent stem cells using CRISPRa. Cortical neuronal differentiation shows that an increased APP gene dosage is responsible for increased β-amyloid production, altered Aβ42/40 ratio, and deposition of the pyroglutamate (E3)-containing amyloid aggregates, but not for several tau-related AD phenotypes or increased apoptosis. Transcriptome comparisons demonstrate that APP has a widespread and temporally modulated impact on neuronal gene expression. Collectively, these data reveal an important role for APP in the amyloidogenic aspects of AD but challenge the idea that increased APP levels are solely responsible for increasing specific phosphorylated forms of tau or enhanced neuronal cell death in Down syndrome-associated AD pathogenesis.
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