Person: Sicinska, Ewa
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Publication Enhancer Signatures Stratify and Predict Outcomes of Non-Functional Pancreatic Neuroendocrine Tumors
(Springer Science and Business Media LLC, 2019-07-01) Cejas, Paloma; Drier, Yotam; Brosens, Lodewijk A. A.; Deshpande, Vikram; Morsink, Folkert H. M.; Graham, Mindy K.; Valk, Gerlof D.; Vriens, Menno R.; Fernandez-Del Castillo, Carlos; Fabiana Lucia da Silva, Annacarolina; Font-Tello, Alba; Heaphy, Christopher M.; Sicinska, Ewa; Dreijerink, Koen; Epstein, Charles; Conemans, Elfi; Ferrone, Cristina; Adar, Tomer; Bowden, Michaela; Whitton, Holly; Long, Henry; Gaskell, Elizabeth; Shoresh, Noam; Kulke, Matthew; Chung, Daniel; Bernstein, Bradley; Shivdasani, RameshMost pancreatic neuroendocrine tumors (PNETs) do not produce excess hormones and are therefore considered ‘non-functional’. As clinical behaviors vary widely and distant metastases are eventually lethal, biological classifications might guide treatment. Using enhancer maps to infer gene regulatory programs, we find that non-functional PNETs fall into two major sub-types whose epigenomes and transcriptomes partially resemble islet alpha and beta cells. Transcription factors ARX and PDX1 specify these normal cells, respectively, and 84% of 142 non-functional PNETs expressed one or the other factor, occasionally both. Among 103 cases, distant relapses occurred almost exclusively in patients with ARX+PDX1- tumors and, within this sub-type, in cases with alternative lengthening of telomeres (ALT). These markedly different outcomes belied similar clinical presentations and histology and, in one cohort, occurred irrespective of MEN1 mutation. This robust molecular stratification provides insight into cell lineage correlates of non-functional PNETs, accurately predicts disease course, and can inform post-operative clinical decisions.
Publication Altered Chromosomal Topology Drives Oncogenic Programs in SDH-Deficient GISTs
(Springer Science and Business Media LLC, 2019-10-16) Flavahan, William A.; Drier, Yotam; Johnstone, Sarah E.; Hemming, Matthew; Tarjan, Daniel R.; Hegazi, Esmat; Shareef, Sarah; Javed, Nauman; Eschle, Benjamin K.; Gokhale, Prafulla C.; Hornick, Jason; Sicinska, Ewa; Demetri, George; Bernstein, BradleyEpigenetic aberrations are widespread in cancer, yet the underlying mechanisms and causality remain poorly understood1-3. A subset of gastrointestinal stromal tumors (GISTs) lack canonical kinase mutations but instead have succinate dehydrogenase (SDH)-deficiency and global DNA hyper-methylation4,5. Here we associate this hyper-methylation with changes in genome topology that activate oncogenic programs. To investigate epigenetic alterations systematically, we mapped DNA methylation, CTCF insulators, enhancers, and chromosome topology in KIT-mutant, PDGFRA-mutant, and SDH-deficient GISTs. Although these respective subtypes shared similar enhancer landscapes, we identified hundreds of putative insulators where DNA methylation replaced CTCF binding in SDH-deficient GISTs. We focused on a disrupted insulator that normally partitions a core GIST super-enhancer from the FGF4 oncogene. Recurrent loss of this insulator alters locus topology in SDH-deficient GISTs, allowing aberrant physical interaction between enhancer and oncogene. CRISPR-mediated excision of the corresponding CTCF motifs in an SDH-intact GIST model disrupted the boundary and strongly up-regulated FGF4 expression. We also identified a second recurrent insulator loss event near the KIT oncogene, which is also highly expressed across SDH-deficient GISTs. Finally, we established a patient-derived xenograft (PDX) from an SDH-deficient GIST that faithfully maintains the epigenetics of the parental tumor, including hyper-methylation and insulator defects. This PDX model is highly sensitive to FGF receptor (FGFR) inhibitor, and more so to combined FGFR and KIT inhibition, validating the functional significance of the underlying epigenetic lesions. Our study reveals how epigenetic alterations can drive oncogenic programs in the absence of canonical kinase mutations, with implications for mechanistic targeting of aberrant pathways in cancers.