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Expanded huntingtin CAG repeats disrupt the balance between neural progenitor expansion and differentiation in human cerebral organoids

Zhang, Jinqiu, Ooi, Jolene, Utama, Kagistia Hana, Langley, Sarah R. ORCID: https://orcid.org/0000-0003-4419-476X, Akwasi Aning, Obed, Shin Park, Dong, Renner, Magdalena, Ma, Shiming, Cheok, Chit Fang, Knoblich, Juergen A., Ginhoux, Florent, Petretto, Enrico and Pouladi, Mahmoud A. 2019. Expanded huntingtin CAG repeats disrupt the balance between neural progenitor expansion and differentiation in human cerebral organoids. [Online]. bioRXiv. Available at: https://doi.org/10.1101/850586

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Abstract

Huntington disease (HD) manifests in both adult and juvenile forms. Mutant HTT gene carriers are thought to undergo normal brain development followed by a degenerative phase, resulting in progressive clinical manifestations. However, recent studies in children and prodromal individuals at risk for HD have raised the possibility of abnormal neurodevelopment. Although key findings in rodent models support this notion, direct evidence in the context of human physiology remains lacking. Using a panel of isogenic HD human embryonic pluripotent stem cells and cerebral organoids, we investigated the impact of mutant HTT on early neurodevelopment. We find that ventricular zone-like neuroepithelial progenitor layer expansion is blunted in an HTT CAG repeat length-dependent manner due to premature neurogenesis in HD cerebral organoids, driven by cell intrinsic processes. Transcriptional profiling and imaging analysis revealed impaired cell cycle regulatory processes, increased G1 length, and increased asymmetric division of apical progenitors, collectively contributing to premature neuronal differentiation. We demonstrate increased activity of the ATM-p53 pathway, an up-stream regulator of cell cycle processes, and show that treatment with ATM antagonists partially rescues the blunted neuroepithelial progenitor expansion in HD organoids. Our findings suggest that CAG repeat length regulates the balance between neural progenitor expansion and differentiation during early neurodevelopment. Our results further support the view that HD, at least in its early-onset forms, may not be a purely neurodegenerative disorder, and that abnormal neurodevelopment may be a component of HD pathophysiology.

Item Type: Website Content
Date Type: Published Online
Status: Published
Schools: Biosciences
Publisher: bioRXiv
Last Modified: 30 Nov 2023 10:42
URI: https://orca.cardiff.ac.uk/id/eprint/162130

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