bioRxiv · 10.1101/2021.02.17.431707
The Amyloid Precursor Protein regulates human cortical neurogenesis
Abstract
The approximately 16 billion neurons of the human neocortex are derived from a relatively limited number of developmental neural stem cells (NSCs). During embryogenesis, human cortical NSCs initially generate neurons at a particularly slow rate while preserving their progenitor state for a relatively long time. How this balance between the progenitor state and neurogenic state is regulated, and whether it contributes to species-specific brain patterning, is poorly understood. Here we show that the characteristic potential of human NSCs to remain in a progenitor state as they generate neurons for a prolonged amount of time requires the Amyloid Precursor Protein (APP). In contrast, APP is dispensable in mouse NSCs, which undergo neurogenesis at a much faster rate. Mechanistically, loss of APP cell-autonomously accelerates neurogenesis through activation of the AP1 transcription factor and repression of WNT signaling. We propose that the fine balance between self-renewal and differentiation is homeostatically regulated by APP, which may contribute to human-specific temporal patterns of neurogenesis.
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Shabani, K., Pigeon, J., Benaissa Touil Zariouh, M., Liu, T., Saffarian, A., Komatsu, J., Liu, E., Danda, N., Limame, R., Bohl, D., Parras, C., Hassan, B. A.. 2021-02-17. The Amyloid Precursor Protein regulates human cortical neurogenesis. https://doi.org/10.1101/2021.02.17.431707
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