Abstract
<jats:title>ABSTRACT</jats:title> <jats:p> The amyloid precursor protein (APP) is heavily studied as the source of amyloid beta in Alzheimer’s disease (AD), however, the complex functions of APP remain poorly understood, as does the impact of APP dosage on neurodevelopment. Here we study APP specifically in the context of Trisomy 21. In an effort to reduce APP dosage in trisomy 21 iPSCs, we generated trisomic isogenic lines which vary in APP dosage, including a full APP knock-out line, as well as lines carrying mutations of the APP extracellular domain. We used a panel of these lines to study potential impacts of APP dosage or structure on two distinct steps of neurogenesis in trisomic cells: 1) terminal differentiation of human neuro-progenitor cells (NPC) to post-mitotic neurons and 2) neuron structure as reflected in neurite outgrowth. Complete loss of APP causes marked defects in each of these two distinct steps, reducing both the terminal differentiation of NPCs to neurons, and proper neurite development for extended neuron structure. Hence, APP is necessary for both aspects of normal neurogenesis. Further analyses of the null and other mutant lines indicate that APP likely impacts these two distinct steps by two different mechanisms. Collective results suggest that the reduced terminal differentiation of NPCs reflects an effect of APP dosage, whereas the defects in neurite extension are due to structural mutation of the APP extracellular domain. Absence of APP or reduced (monosomic) APP dosage prolonged the cycling of trisomic NPCs, which is known to be regulated by Notch signaling. APP and Notch are the main targets of gamma-secretase cleavage, hence we hypothesized that APP dosage may impact neurogenesis indirectly, potentially via effects on Notch signaling. To test this, we treated NPCs with Compound E which inhibits gamma-secretase (and Notch signaling); results show this restored levels of neurogenesis in APP depleted lines, supporting an indirect effect of APP <jats:italic>dosage</jats:italic> . In contrast, results indicate that disruption of APP extracellular domain integrity impacts neurite extension via a more direct role of APP in neuron structural maturation. This study describes a resource of well-characterized APP mutant isogenic DS iPSC lines, implicates a dynamic interplay between APP dosage and Notch signaling, and raises new questions about the impact of APP dosage in orchestrating neural progenitor fate decisions during human brain development, specifically in the context of trisomy 21. </jats:p>