Lysosomal dysfunction in Down syndrome and Alzheimer mouse models is caused by v-ATPase inhibition by Tyr<sup>682</sup>-phosphorylated APP βCTF.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 37494443.
- Also identified by DOI 10.1126/sciadv.adg1925 and PMC identifier 10371027.
- Licence recorded as CC BY-NC.
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Abstract
Lysosome dysfunction arises early and propels Alzheimer's disease (AD). Herein, we show that amyloid precursor protein (APP), linked to early-onset AD in Down syndrome (DS), acts directly via its β-C-terminal fragment (βCTF) to disrupt lysosomal vacuolar (H<sup>+</sup>)-adenosine triphosphatase (v-ATPase) and acidification. In human DS fibroblasts, the phosphorylated <sup>682</sup>YENPTY internalization motif of APP-βCTF binds selectively within a pocket of the v-ATPase V0a1 subunit cytoplasmic domain and competitively inhibits association of the V1 subcomplex of v-ATPase, thereby reducing its activity. Lowering APP-βCTF Tyr<sup>682</sup> phosphorylation restores v-ATPase and lysosome function in DS fibroblasts and in vivo in brains of DS model mice. Notably, lowering APP-βCTF Tyr<sup>682</sup> phosphorylation below normal constitutive levels boosts v-ATPase assembly and activity, suggesting that v-ATPase may also be modulated tonically by phospho-APP-βCTF. Elevated APP-βCTF Tyr<sup>682</sup> phosphorylation in two mouse AD models similarly disrupts v-ATPase function. These findings offer previously unknown insight into the pathogenic mechanism underlying faulty lysosomes in all forms of AD.
Medical subject headings
- Down Syndrome
- Alzheimer Disease