Identification of Two Protein-Signaling States Delineating Transcriptionally Heterogeneous Human Medulloblastoma
Author(s) -
Walderik W. Zomerman,
Sabine Plasschaert,
Siobhan Conroy,
Frank J.G. Scherpen,
Tiny G. J. Meeuwsende Boer,
Harm Jan Lourens,
Sergi Guerrero Llobet,
Marlinde J. Smit,
Lorian SlagterMenkema,
Annika Seitz,
Corrie Gidding,
Esther Hulleman,
Pieter Wesseling,
Lisethe Meijer,
Léon C.L.T. van Kempen,
Anke van den Berg,
Daniël O. Warmerdam,
Frank A.E. Kruyt,
Floris Foijer,
Marcel A.T.M. van Vugt,
Wilfred F.A. den Dunnen,
Eelco W. Hoving,
Victor Guryev,
Eveline S.J.M. de Bont,
Sophia W.M. Bruggeman
Publication year - 2018
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2018.02.089
Subject(s) - medulloblastoma , biology , signal transduction , sonic hedgehog , cancer research , hedgehog signaling pathway , phosphorylation , phosphoprotein , cell cycle , hedgehog , apoptosis , microbiology and biotechnology , genetics
The brain cancer medulloblastoma consists of different transcriptional subgroups. To characterize medulloblastoma at the phosphoprotein-signaling level, we performed high-throughput peptide phosphorylation profiling on a large cohort of SHH (Sonic Hedgehog), group 3, and group 4 medulloblastomas. We identified two major protein-signaling profiles. One profile was associated with rapid death post-recurrence and resembled MYC-like signaling for which MYC lesions are sufficient but not necessary. The second profile showed enrichment for DNA damage, as well as apoptotic and neuronal signaling. Integrative analysis demonstrated that heterogeneous transcriptional input converges on these protein-signaling profiles: all SHH and a subset of group 3 patients exhibited the MYC-like protein-signaling profile; the majority of the other group 3 subset and group 4 patients displayed the DNA damage/apoptotic/neuronal signaling profile. Functional analysis of enriched pathways highlighted cell-cycle progression and protein synthesis as therapeutic targets for MYC-like medulloblastoma.
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