APPsα rescues impaired Ca<sup>2+</sup> homeostasis in APP- and APLP2-deficient hippocampal neurons.

Ludewig, Susann; Herrmann, Ulrike; Michaelsen-Preusse, Kristin; Metzdorf, Kristin; Just, Jennifer; Bold, Charlotte; Müller, Ulrike C; Korte, Martin · Proc Natl Acad Sci U S A · 2021

basic_science · Level V

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Abstract

Alterations in Ca<sup>2+</sup> homeostasis have been reported in several in vitro and in vivo studies using mice expressing the Alzheimer's disease-associated transgenes, presenilin and the amyloid precursor protein (APP). While intense research focused on amyloid-β-mediated functions on neuronal Ca<sup>2+</sup> handling, the physiological role of APP and its close homolog APLP2 is still not fully clarified. We now elucidate a mechanism to show how APP and its homolog APLP2 control neuronal Ca<sup>2+</sup> handling and identify especially the ectodomain APPsα as an essential regulator of Ca<sup>2+</sup> homeostasis. Importantly, we demonstrate that the loss of APP and APLP2, but not APLP2 alone, impairs Ca<sup>2+</sup> handling, the refill of the endoplasmic reticulum Ca<sup>2+</sup> stores, and synaptic plasticity due to altered function and expression of the SERCA-ATPase and expression of store-operated Ca<sup>2+</sup> channel-associated proteins Stim1 and Stim2. Long-term AAV-mediated expression of APPsα, but not acute application of the recombinant protein, restored physiological Ca<sup>2+</sup> homeostasis and synaptic plasticity in APP/APLP2 cDKO cultures. Overall, our analysis reveals an essential role of the APP family and especially of the ectodomain APPsα in Ca<sup>2+</sup> homeostasis, thereby highlighting its therapeutic potential.

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