scRNA-seq in medulloblastoma shows cellular heterogeneity and lineage expansion support resistance to SHH inhibitor therapy

Author:

Ocasio JenniferORCID,Babcock BenjaminORCID,Malawsky Daniel,Weir Seth J.,Loo Lipin,Simon Jeremy M.ORCID,Zylka Mark J.,Hwang Duhyeong,Dismuke Taylor,Sokolsky Marina,Rosen Elias P.ORCID,Vibhakar Rajeev,Zhang Jiao,Saulnier OlivierORCID,Vladoiu Maria,El-Hamamy Ibrahim,Stein Lincoln D.,Taylor Michael D.ORCID,Smith Kyle S.,Northcott Paul A.ORCID,Colaneri Alejandro,Wilhelmsen KirkORCID,Gershon Timothy R.ORCID

Abstract

AbstractTargeting oncogenic pathways holds promise for brain tumor treatment, but inhibition of Sonic Hedgehog (SHH) signaling has failed in SHH-driven medulloblastoma. Cellular diversity within tumors and reduced lineage commitment can undermine targeted therapy by increasing the probability of treatment-resistant populations. Using single-cell RNA-seq and lineage tracing, we analyzed cellular diversity in medulloblastomas in transgenic, medulloblastoma-prone mice, and responses to the SHH-pathway inhibitor vismodegib. In untreated tumors, we find expected stromal cells and tumor-derived cells showing either a spectrum of neural progenitor-differentiation states or glial and stem cell markers. Vismodegib reduces the proliferative population and increases differentiation. However, specific cell types in vismodegib-treated tumors remain proliferative, showing either persistent SHH-pathway activation or stem cell characteristics. Our data show that even in tumors with a single pathway-activating mutation, diverse mechanisms drive tumor growth. This diversity confers early resistance to targeted inhibitor therapy, demonstrating the need to target multiple pathways simultaneously.

Funder

U.S. Department of Health & Human Services | NIH | National Institute of Neurological Disorders and Stroke

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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