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Featured researches published by Annie Huang.


Nature | 2014

Epigenomic alterations define lethal CIMP-positive ependymomas of infancy.

Stephen C. Mack; Hendrik Witt; Rosario M. Piro; Lei Gu; Scott Zuyderduyn; A. M. Stütz; Xiaosong Wang; Marco Gallo; Livia Garzia; Kory Zayne; Xiaoyang Zhang; Vijay Ramaswamy; Natalie Jäger; David T. W. Jones; Martin Sill; Trevor J. Pugh; M. Ryzhova; Khalida Wani; David Shih; Renee Head; Marc Remke; S. D. Bailey; Thomas Zichner; Claudia C. Faria; Mark Barszczyk; Sebastian Stark; Huriye Seker-Cin; Sonja Hutter; Pascal Johann; Sebastian Bender

Ependymomas are common childhood brain tumours that occur throughout the nervous system, but are most common in the paediatric hindbrain. Current standard therapy comprises surgery and radiation, but not cytotoxic chemotherapy as it does not further increase survival. Whole-genome and whole-exome sequencing of 47 hindbrain ependymomas reveals an extremely low mutation rate, and zero significant recurrent somatic single nucleotide variants. Although devoid of recurrent single nucleotide variants and focal copy number aberrations, poor-prognosis hindbrain ependymomas exhibit a CpG island methylator phenotype. Transcriptional silencing driven by CpG methylation converges exclusively on targets of the Polycomb repressive complex 2 which represses expression of differentiation genes through trimethylation of H3K27. CpG island methylator phenotype-positive hindbrain ependymomas are responsive to clinical drugs that target either DNA or H3K27 methylation both in vitro and in vivo. We conclude that epigenetic modifiers are the first rational therapeutic candidates for this deadly malignancy, which is epigenetically deregulated but genetically bland.


Nature Genetics | 2014

Genomic analysis of diffuse intrinsic pontine gliomas identifies three molecular subgroups and recurrent activating ACVR1 mutations

Pawel Buczkowicz; Christine M. Hoeman; Patricia Rakopoulos; Sanja Pajovic; Louis Letourneau; Misko Dzamba; Andrew Morrison; Peter W. Lewis; Eric Bouffet; Ute Bartels; Jennifer Zuccaro; Sameer Agnihotri; Scott Ryall; Mark Barszczyk; Yevgen Chornenkyy; Mathieu Bourgey; Guillaume Bourque; Alexandre Montpetit; Francisco Cordero; Pedro Castelo-Branco; Joshua Mangerel; Uri Tabori; King Ching Ho; Annie Huang; Kathryn R. Taylor; Alan Mackay; Javad Nazarian; Jason Fangusaro; Matthias A. Karajannis; David Zagzag

Diffuse intrinsic pontine glioma (DIPG) is a fatal brain cancer that arises in the brainstem of children, with no effective treatment and near 100% fatality. The failure of most therapies can be attributed to the delicate location of these tumors and to the selection of therapies on the basis of assumptions that DIPGs are molecularly similar to adult disease. Recent studies have unraveled the unique genetic makeup of this brain cancer, with nearly 80% found to harbor a p.Lys27Met histone H3.3 or p.Lys27Met histone H3.1 alteration. However, DIPGs are still thought of as one disease, with limited understanding of the genetic drivers of these tumors. To understand what drives DIPGs, we integrated whole-genome sequencing with methylation, expression and copy number profiling, discovering that DIPGs comprise three molecularly distinct subgroups (H3-K27M, silent and MYCN) and uncovering a new recurrent activating mutation affecting the activin receptor gene ACVR1 in 20% of DIPGs. Mutations in ACVR1 were constitutively activating, leading to SMAD phosphorylation and increased expression of the downstream activin signaling targets ID1 and ID2. Our results highlight distinct molecular subgroups and novel therapeutic targets for this incurable pediatric cancer.


Journal of Clinical Oncology | 2010

Whole-Genome Profiling of Pediatric Diffuse Intrinsic Pontine Gliomas Highlights Platelet-Derived Growth Factor Receptor α and Poly (ADP-ribose) Polymerase As Potential Therapeutic Targets

Maryam Zarghooni; Ute Bartels; Eric Lee; Pawel Buczkowicz; Andrew Morrison; Annie Huang; Eric Bouffet; Cynthia Hawkins

PURPOSE Diffuse intrinsic pontine glioma (DIPG) is one of the most devastating of pediatric malignancies and one for which no effective therapy exists. A major contributor to the failure of therapeutic trials is the assumption that biologic properties of brainstem tumors in children are identical to cerebral high-grade gliomas of adults. A better understanding of the biology of DIPG itself is needed in order to develop agents targeted more specifically to these childrens disease. Herein, we address this lack of knowledge by performing the first high-resolution single nucleotide polymorphism (SNP) -based DNA microarray analysis of a series of DIPGs. PATIENTS AND METHODS Eleven samples (nine postmortem and two pretreatment surgical samples), the largest series thus far examined, were hybridized to SNP arrays (250 k or 6.0). The study was approved by the research ethics board at our institution. All array findings were validated using quantitative polymerase chain reaction, fluorescence in situ hybridization, immunohistochemistry, and/or microsatellite analysis. RESULTS Analysis of DIPG copy number alterations showed recurrent changes distinct from those of pediatric supratentorial high-grade astrocytomas. Thirty-six percent of DIPGs had gains in platelet-derived growth factor receptor alpha (PDGFRA; 4 to 18 copies) and all showed PDGFR-alpha expression. Low-level gains in poly (ADP-ribose) polymerase (PARP) -1 were identified in three cases. Pathway analysis revealed genes with loss of heterozygosity were enriched for DNA repair pathways. CONCLUSION To our knowledge, our data provides the first, comprehensive high-resolution genomic analysis of pediatric DIPG. Our findings of recurrent involvement of the PDGFR pathway as well as defects in DNA repair pathways coupled with gain of PARP-1 highlight two potential, biologically based, therapeutic targets directed specifically at this devastating disease.


Cancer Cell | 2009

Frequent Amplification of a chr19q13.41 MicroRNA Polycistron in Aggressive Primitive Neuroectodermal Brain Tumors

Meihua Li; Kyle F. Lee; Yuntao Lu; Ian Clarke; David Shih; Charles G. Eberhart; V. Peter Collins; Tim Van Meter; Daniel Picard; Limei Zhou; Paul C. Boutros; Piergiorgio Modena; Muh Lii Liang; Steve W. Scherer; Eric Bouffet; James T. Rutka; Scott L. Pomeroy; Ching C. Lau; Michael D. Taylor; Amar Gajjar; Peter Dirks; Cynthia Hawkins; Annie Huang

We discovered a high-level amplicon involving the chr19q13.41 microRNA (miRNA) cluster (C19MC) in 11/45 ( approximately 25%) primary CNS-PNET, which results in striking overexpression of miR-517c and 520g. Constitutive expression of miR-517c or 520g promotes in vitro and in vivo oncogenicity, modulates cell survival, and robustly enhances growth of untransformed human neural stem cells (hNSCs) in part by upregulating WNT pathway signaling and restricting differentiation of hNSCs. Remarkably, the C19MC amplicon, which is very rare in other brain tumors (1/263), identifies an aggressive subgroup of CNS-PNET with distinct gene-expression profiles, characteristic histology, and dismal survival. Our data implicate miR-517c and 520g as oncogenes and promising biological markers for CNS-PNET and provide important insights into oncogenic properties of the C19MC locus.


Nature Genetics | 2015

Combined hereditary and somatic mutations of replication error repair genes result in rapid onset of ultra-hypermutated cancers

Adam Shlien; Brittany Campbell; Richard de Borja; Ludmil B. Alexandrov; Daniele Merico; David C. Wedge; Peter Van Loo; Patrick Tarpey; Paul Coupland; Sam Behjati; Aaron Pollett; Tatiana Lipman; Abolfazl Heidari; Shriya Deshmukh; Naama Avitzur; Bettina Meier; Moritz Gerstung; Ye Hong; Diana Merino; Manasa Ramakrishna; Marc Remke; Roland Arnold; Gagan B. Panigrahi; Neha P. Thakkar; Karl P Hodel; Erin E. Henninger; A. Yasemin Göksenin; Doua Bakry; George S. Charames; Harriet Druker

DNA replication−associated mutations are repaired by two components: polymerase proofreading and mismatch repair. The mutation consequences of disruption to both repair components in humans are not well studied. We sequenced cancer genomes from children with inherited biallelic mismatch repair deficiency (bMMRD). High-grade bMMRD brain tumors exhibited massive numbers of substitution mutations (>250/Mb), which was greater than all childhood and most cancers (>7,000 analyzed). All ultra-hypermutated bMMRD cancers acquired early somatic driver mutations in DNA polymerase ɛ or δ. The ensuing mutation signatures and numbers are unique and diagnostic of childhood germ-line bMMRD (P < 10−13). Sequential tumor biopsy analysis revealed that bMMRD/polymerase-mutant cancers rapidly amass an excess of simultaneous mutations (∼600 mutations/cell division), reaching but not exceeding ∼20,000 exonic mutations in <6 months. This implies a threshold compatible with cancer-cell survival. We suggest a new mechanism of cancer progression in which mutations develop in a rapid burst after ablation of replication repair.


Cancer Cell | 2016

Atypical Teratoid/Rhabdoid Tumors Are Comprised of Three Epigenetic Subgroups with Distinct Enhancer Landscapes

Pascal Johann; Serap Erkek; Marc Zapatka; Kornelius Kerl; Ivo Buchhalter; Volker Hovestadt; David T. W. Jones; Dominik Sturm; Carl Hermann; Maia Segura Wang; Andrey Korshunov; Marina Rhyzova; Susanne Gröbner; Sebastian Brabetz; Lukas Chavez; Susanne Bens; Stefan Gröschel; Fabian Kratochwil; Andrea Wittmann; Laura Sieber; Christina Geörg; Stefan Wolf; Katja Beck; Florian Oyen; David Capper; Peter van Sluis; Richard Volckmann; Jan Koster; Rogier Versteeg; Andreas von Deimling

Atypical teratoid/rhabdoid tumor (ATRT) is one of the most common brain tumors in infants. Although the prognosis of ATRT patients is poor, some patients respond favorably to current treatments, suggesting molecular inter-tumor heterogeneity. To investigate this further, we genetically and epigenetically analyzed 192 ATRTs. Three distinct molecular subgroups of ATRTs, associated with differences in demographics, tumor location, and type of SMARCB1 alterations, were identified. Whole-genome DNA and RNA sequencing found no recurrent mutations in addition to SMARCB1 that would explain the differences between subgroups. Whole-genome bisulfite sequencing and H3K27Ac chromatin-immunoprecipitation sequencing of primary tumors, however, revealed clear differences, leading to the identification of subgroup-specific regulatory networks and potential therapeutic targets.


Lancet Oncology | 2012

Markers of survival and metastatic potential in childhood CNS primitive neuro-ectodermal brain tumours: an integrative genomic analysis

Daniel Picard; Suzanne Miller; Cynthia Hawkins; Eric Bouffet; Hazel Rogers; Tiffany Chan; Seung Ki Kim; Young Shin Ra; Jason Fangusaro; Andrey Korshunov; Helen Toledano; Hideo Nakamura; James T. Hayden; Jennifer A. Chan; Lucie Lafay-Cousin; Pingzhao Hu; Xing Fan; Karin M. Muraszko; Scott L. Pomeroy; Ching C. Lau; Ho Keung Ng; Chris Jones; Timothy Van Meter; Steven C. Clifford; Charles G. Eberhart; Amar Gajjar; Stefan M. Pfister; Richard Grundy; Annie Huang

BACKGROUND Childhood CNS primitive neuro-ectodermal brain tumours (PNETs) are very aggressive brain tumours for which the molecular features and best treatment approaches are unknown. We assessed a large cohort of these rare tumours to identify molecular markers to enhance clinical management of this disease. METHODS We obtained 142 primary hemispheric CNS PNET samples from 20 institutions in nine countries and examined transcriptional profiles for a subset of 51 samples and copy number profiles for a subset of 77 samples. We used clustering, gene, and pathway enrichment analyses to identify tumour subgroups and group-specific molecular markers, and applied immunohistochemical and gene-expression analyses to validate and assess the clinical significance of the subgroup markers. FINDINGS We identified three molecular subgroups of CNS PNETs that were distinguished by primitive neural (group 1), oligoneural (group 2), and mesenchymal lineage (group 3) gene-expression signatures with differential expression of cell-lineage markers LIN28 and OLIG2. Patients with group 1 tumours were most often female (male:female ratio 0·61 for group 1 vs 1·25 for group 2 and 1·63 for group 3; p=0·043 [group 1 vs groups 2 and 3]), youngest (median age at diagnosis 2·9 years [95% CI 2·4-5·2] for group 1 vs 7·9 years [6·0-9·7] for group 2 and 5·9 years [4·9-7·8] for group 3; p=0·005), and had poorest survival (median survival 0·8 years [95% CI 0·5-1·2] in group 1, 1·8 years [1·4-2·3] in group 2 and 4·3 years [0·8-7·8] in group 3; p=0·019). Patients with group 3 tumours had the highest incidence of metastases at diagnosis (no distant metastasis:metastasis ratio 0·90 for group 3 vs 2·80 for group 1 and 5·67 for group 2; p=0·037). INTERPRETATION LIN28 and OLIG2 are promising diagnostic and prognostic molecular markers for CNS PNET that warrant further assessment in prospective clinical trials. FUNDING Canadian Institute of Health Research, Brainchild/SickKids Foundation, and the Samantha Dickson Brain Tumour Trust.


Acta Neuropathologica | 2014

Embryonal tumor with abundant neuropil and true rosettes (ETANTR), ependymoblastoma, and medulloepithelioma share molecular similarity and comprise a single clinicopathological entity

Andrey Korshunov; Dominik Sturm; Marina Ryzhova; Volker Hovestadt; Marco Gessi; David T. W. Jones; Marc Remke; Paul A. Northcott; Arie Perry; Daniel Picard; Marc K. Rosenblum; Manila Antonelli; Eleonora Aronica; Ulrich Schüller; Martin Hasselblatt; Adelheid Woehrer; Olga Zheludkova; Ella Kumirova; Stéphanie Puget; Michael D. Taylor; Felice Giangaspero; V. Peter Collins; Andreas von Deimling; Peter Lichter; Annie Huang; Torsten Pietsch; Stefan M. Pfister; Marcel Kool

Three histological variants are known within the family of embryonal rosette-forming neuroepithelial brain tumors. These include embryonal tumor with abundant neuropil and true rosettes (ETANTR), ependymoblastoma (EBL), and medulloepithelioma (MEPL). In this study, we performed a comprehensive clinical, pathological, and molecular analysis of 97 cases of these rare brain neoplasms, including genome-wide DNA methylation and copy number profiling of 41 tumors. We identified uniform molecular signatures in all tumors irrespective of histological patterns, indicating that ETANTR, EBL, and MEPL comprise a single biological entity. As such, future WHO classification schemes should consider lumping these variants into a single diagnostic category, such as embryonal tumor with multilayered rosettes (ETMR). We recommend combined LIN28A immunohistochemistry and FISH analysis of the 19q13.42 locus for molecular diagnosis of this tumor category. Recognition of this distinct pediatric brain tumor entity based on the fact that the three histological variants are molecularly and clinically uniform will help to distinguish ETMR from other embryonal CNS tumors and to better understand the biology of these highly aggressive and therapy-resistant pediatric CNS malignancies, possibly leading to alternate treatment strategies.


Nature Genetics | 2014

Fusion of TTYH1 with the C19MC microRNA cluster drives expression of a brain-specific DNMT3B isoform in the embryonal brain tumor ETMR

Claudia L. Kleinman; Noha Gerges; Simon Papillon-Cavanagh; Patrick Sin-Chan; Albena Pramatarova; Dong Anh Khuong Quang; Véronique Adoue; Stephan Busche; Maxime Caron; Haig Djambazian; Amandine Bemmo; Adam M. Fontebasso; Tara Spence; Jeremy Schwartzentruber; Steffen Albrecht; Péter Hauser; Miklós Garami; Almos Klekner; László Bognár; Jose Luis Montes; Alfredo Staffa; Alexandre Montpetit; Pierre Bérubé; Magdalena Zakrzewska; Krzysztof Zakrzewski; Pawel P. Liberski; Zhifeng Dong; Peter M. Siegel; Thomas F. Duchaine; Christian Perotti

Embryonal tumors with multilayered rosettes (ETMRs) are rare, deadly pediatric brain tumors characterized by high-level amplification of the microRNA cluster C19MC. We performed integrated genetic and epigenetic analyses of 12 ETMR samples and identified, in all cases, C19MC fusions to TTYH1 driving expression of the microRNAs. ETMR tumors, cell lines and xenografts showed a specific DNA methylation pattern distinct from those of other tumors and normal tissues. We detected extreme overexpression of a previously uncharacterized isoform of DNMT3B originating at an alternative promoter that is active only in the first weeks of neural tube development. Transcriptional and immunohistochemical analyses suggest that C19MC-dependent DNMT3B deregulation is mediated by RBL2, a known repressor of DNMT3B. Transfection with individual C19MC microRNAs resulted in DNMT3B upregulation and RBL2 downregulation in cultured cells. Our data suggest a potential oncogenic re-engagement of an early developmental program in ETMR via epigenetic alteration mediated by an embryonic, brain-specific DNMT3B isoform.


Journal of Clinical Oncology | 2015

BRAF Mutation and CDKN2A Deletion Define a Clinically Distinct Subgroup of Childhood Secondary High-Grade Glioma

Matthew Mistry; Nataliya Zhukova; Daniele Merico; Patricia Rakopoulos; Rahul Krishnatry; Mary Shago; James Stavropoulos; Noa Alon; Jason D. Pole; Peter N. Ray; Vilma Navickiene; Joshua Mangerel; Marc Remke; Pawel Buczkowicz; Vijay Ramaswamy; Ana Guerreiro Stucklin; Martin Li; Edwin J. Young; Cindy Zhang; Pedro Castelo-Branco; Doua Bakry; Suzanne Laughlin; Adam Shlien; Jennifer A. Chan; Keith L. Ligon; James T. Rutka; Peter Dirks; Michael D. Taylor; Mark T. Greenberg; David Malkin

PURPOSE To uncover the genetic events leading to transformation of pediatric low-grade glioma (PLGG) to secondary high-grade glioma (sHGG). PATIENTS AND METHODS We retrospectively identified patients with sHGG from a population-based cohort of 886 patients with PLGG with long clinical follow-up. Exome sequencing and array CGH were performed on available samples followed by detailed genetic analysis of the entire sHGG cohort. Clinical and outcome data of genetically distinct subgroups were obtained. RESULTS sHGG was observed in 2.9% of PLGGs (26 of 886 patients). Patients with sHGG had a high frequency of nonsilent somatic mutations compared with patients with primary pediatric high-grade glioma (HGG; median, 25 mutations per exome; P = .0042). Alterations in chromatin-modifying genes and telomere-maintenance pathways were commonly observed, whereas no sHGG harbored the BRAF-KIAA1549 fusion. The most recurrent alterations were BRAF V600E and CDKN2A deletion in 39% and 57% of sHGGs, respectively. Importantly, all BRAF V600E and 80% of CDKN2A alterations could be traced back to their PLGG counterparts. BRAF V600E distinguished sHGG from primary HGG (P = .0023), whereas BRAF and CDKN2A alterations were less commonly observed in PLGG that did not transform (P < .001 and P < .001 respectively). PLGGs with BRAF mutations had longer latency to transformation than wild-type PLGG (median, 6.65 years [range, 3.5 to 20.3 years] v 1.59 years [range, 0.32 to 15.9 years], respectively; P = .0389). Furthermore, 5-year overall survival was 75% ± 15% and 29% ± 12% for children with BRAF mutant and wild-type tumors, respectively (P = .024). CONCLUSION BRAF V600E mutations and CDKN2A deletions constitute a clinically distinct subtype of sHGG. The prolonged course to transformation for BRAF V600E PLGGs provides an opportunity for surgical interventions, surveillance, and targeted therapies to mitigate the outcome of sHGG.

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Daniel Picard

University of Düsseldorf

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Lucie Lafay-Cousin

Alberta Children's Hospital

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