Wnt and Notch signaling govern self-renewal and differentiation in a subset of human glioblastoma stem cells

Wnt 和 Notch 信号调控人类胶质母细胞瘤干细胞亚群的自我更新和分化

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作者:Nishani Rajakulendran #, Katherine J Rowland #, Hayden J Selvadurai, Moloud Ahmadi, Nicole I Park, Sergey Naumenko, Sonam Dolma, Ryan J Ward, Milly So, Lilian Lee, Graham MacLeod, Clarissa Pasiliao, Caroline Brandon, Ian D Clarke, Michael D Cusimano, Mark Bernstein, Nizar Batada, Stephane Angers, Pe

Abstract

Developmental signal transduction pathways act diversely, with context-dependent roles across systems and disease types. Glioblastomas (GBMs), which are the poorest prognosis primary brain cancers, strongly resemble developmental systems, but these growth processes have not been exploited therapeutically, likely in part due to the extreme cellular and genetic heterogeneity observed in these tumors. The role of Wnt/βcatenin signaling in GBM stem cell (GSC) renewal and fate decisions remains controversial. Here, we report context-specific actions of Wnt/βcatenin signaling in directing cellular fate specification and renewal. A subset of primary GBM-derived stem cells requires Wnt proteins for self-renewal, and this subset specifically relies on Wnt/βcatenin signaling for enhanced tumor burden in xenograft models. In an orthotopic Wnt reporter model, Wnthi GBM cells (which exhibit high levels of βcatenin signaling) are a faster-cycling, highly self-renewing stem cell pool. In contrast, Wntlo cells (with low levels of signaling) are slower cycling and have decreased self-renewing potential. Dual inhibition of Wnt/βcatenin and Notch signaling in GSCs that express high levels of the proneural transcription factor ASCL1 leads to robust neuronal differentiation and inhibits clonogenic potential. Our work identifies new contexts for Wnt modulation for targeting stem cell differentiation and self-renewal in GBM heterogeneity, which deserve further exploration therapeutically.

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