Literature DB >> 31888756

Brain tumor with an ATXN1-NUTM1 fusion gene expands the histologic spectrum of NUTM1-rearranged neoplasia.

Aurore Siegfried1,2, Julien Masliah-Planchon3,4, Franck-Emmanuel Roux1, Delphine Larrieu-Ciron1, Gaelle Pierron5, Yvan Nicaise2, Marion Gambart1, Isabelle Catalaa1, Sarah Péricart1, Charlotte Dubucs1, Badreddine Mohand-Oumoussa6, Franck Tirode7, Franck Bourdeaut3,4, Emmanuelle Uro-Coste8,9.   

Abstract

Entities:  

Keywords:  ATXN1; Central nervous system; DNA methylation-based classification; NUTM1; NUTM1-rearranged neoplasia; Oncogenic gene fusions, CIC-ATXN1-ATXN1L axis; RNA sequencing

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Year:  2019        PMID: 31888756      PMCID: PMC6937844          DOI: 10.1186/s40478-019-0870-8

Source DB:  PubMed          Journal:  Acta Neuropathol Commun        ISSN: 2051-5960            Impact factor:   7.801


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We report a novel ATXN1-NUTM1 gene fusion in a primitive brain tumor (Fig 1a). A 21-year-old woman was seen in an emergency department for symptoms of increased intracranial pressure, visual disturbance and right hemiparesis. She reported unusual headaches for the past 3 weeks. MRI showed a frontal tumor with intratumoral hemorrhage (Fig. 1b). The entire tumor was surgically removed. The patient did not receive any additional treatment. 16 months after surgery, the patient was symptom-free and MRI showed no recurrence of the tumor.
Fig. 1

ATXN1-NUTM1 gene fusion, confirmed by RT-PCR and Sanger sequencing (a). MRI identified a frontal mass. Enhancement after contrast injection (T1) (b). Representative histopathology. On the left, loose area with neuron-like tumor cells (*detail). On the right, increase in cell density (c). Fascicular architecture with three mitoses (arrows) (d). Chondroid-like, myxoid and hyalinized areas were observed (e). Undifferentiated cells with large nucleoli in a chondromyxoid background (f). Strong GFAP staining was observed. Tumor showed vascular proliferation (g). Neurofilament staining circumscribed the tumor mass with no significant staining within the tumor (h). p53 accumulated in tumor nuclei (i). Anti-NUT antibody staining showing homogeneous intranuclear expression (j)

ATXN1-NUTM1 gene fusion, confirmed by RT-PCR and Sanger sequencing (a). MRI identified a frontal mass. Enhancement after contrast injection (T1) (b). Representative histopathology. On the left, loose area with neuron-like tumor cells (*detail). On the right, increase in cell density (c). Fascicular architecture with three mitoses (arrows) (d). Chondroid-like, myxoid and hyalinized areas were observed (e). Undifferentiated cells with large nucleoli in a chondromyxoid background (f). Strong GFAP staining was observed. Tumor showed vascular proliferation (g). Neurofilament staining circumscribed the tumor mass with no significant staining within the tumor (h). p53 accumulated in tumor nuclei (i). Anti-NUT antibody staining showing homogeneous intranuclear expression (j) Histological features were characterized by a fascicular architectural pattern and chondro-myxoid areas (Fig. 1c, d, e, f). Neuron-like tumor cells were apparent (Fig. 1c). Mitotic activity was overall low but increased in some foci (Fig. 1d). Strong GFAP staining led to an initial diagnosis of an unclassified glioneuronal tumor in spite of olig2 and PS100 negativity (Fig. 1g). Microscopically, the tumor was well circumscribed (Fig. 1h). p53 was accumulated (Fig. 1i). CD56 was strongly expressed. TTF1, chromogranin, synaptophysin, CD34, p63, CK5/6 and smooth muscle actin were negative. ATRX, INI1 and BRG1 expression was maintained. Using the Heidelberg DNA methylation-based CNS tumor classifier, no class prediction was obtained with a greater than ≥0.9 confidence threshold [1]. The closest entity was the CNS Ewing Family Tumor CIC group with a score of 0.235 (Additional file 1: Table S1) (Case methylation data: http://www.ncbi.nlm.nih.gov/geo; GSE138550). This tumor group is associated to the CIC-NUTM1 gene fusion [6]. We observed strong homogeneous nuclear staining with an anti-NUT antibody, suggesting the presence of a CIC-NUTM1 fusion (Fig. 1j). RNA sequencing using the Illumina TruSight RNA Fusion panel and Manta for fusion calling revealed a novel ATXN1-NUTM1 fusion. A CIC-NUTM1 fusion was not detected. ETV4 was overexpressed as in CIC-fused sarcomas [4, 6]. No pathogenic variants were observed in tumor DNA using a 571-gene targeted sequencing panel (Additional file 2: Table S2). The fusion gene transcript encompassed almost all of the ATXN1 coding sequence and the entire exon 6, 7 and 8 regions of NUTM1. The most common NUTM1 breakpoints map between exon 1 and 2, but breakpoints at the distal end of exon 5 have also been described in some CIC-NUTM1 sarcomas [4]. Initially associated with NUT midline carcinomas, NUTM1 fusions have now been described in a broad spectrum of tumors ranging from carcinoma to sarcoma and leukemia [2, 3, 7]. The most common fusion partner gene in carcinoma and sarcoma is BRD4 followed by BRD3 and NSD3. Various new partners have been recently described [2, 3, 5]. The prognosis of these tumors is generally poor, although NUT-associated leukemias appear to be associated with a better prognosis and YAP1-NUTM1 is associated with benign skin adnexal gland tumors [3, 5]. CIC rearranged sarcomas are often fused to DUX4 and less frequently to NUTM1 [4, 7]. All CIC re-arranged tumors irrespective of their location or their fusion partner gene share the same transcriptomic profile defining a molecular subgroup distinct from NUT carcinoma [4, 7]. Interestingly, ATXN1 codes for ataxin1 which forms a transcriptional repressor complex with CIC. They are both part of the CIC-ATXN1-ATXN1L mitotic cell cycle regulator axis [8]. Excluding CIC-NUTM1 fused tumors, only one NUTM1 rearranged brain tumor has been previously reported, namely a cytokeratin negative BRD4-NUTM1 PNET-like parietal lobe tumor in a 3-year old boy with GFAP and synaptophysin positivity. On methylation profiling, this neoplasm did not cluster with tumors of the CNS Ewing Family Tumor CIC group [2]. Myxoid and chondroid differentiation has been reported in NUTM1-rearranged sarcomas but is unusual in primary glioneuronal tumors. Whether the strong GFAP positivity of our specific case is indicative of a glial tumor or of a sarcoma with myoepithelial differentiation cannot be assessed due to the lack of positive staining and specificity for other markers tested. GFAP positivity has been described in 3 out of 4 NUTM1 rearranged soft tissue or visceral sarcomas, this is in contrast to the CNS Ewing Family Tumor CIC group which fails to express any differentiation markers [2, 6]. We recommend performing NUT immunohistochemistry followed by RNA sequencing to identify any potential NUTM1 fusion partner genes in GFAP+/olig2- unclassified glioma, particularly those with myxoid and/or chondroid features. The ATXN1-NUTM1 fusion gene may define a novel group of rare primary brain tumors. The prognostic influence of NUTM1 fusion partners and the brain localization of NUTM1-rearranged tumors warrant further investigation. Additional file 1: Table S1. Results of the Heidelberg DNA methylation-based CNS tumor classifier (entities and scores). Additional file 2: Table S2. List of the 517 childhood cancer genes in the dragon targeted gene sequencing panel (Illumina_TruSeq Custom Amplicon).
  8 in total

1.  Clinicopathologic Features of CIC-NUTM1 Sarcomas, a New Molecular Variant of the Family of CIC-Fused Sarcomas.

Authors:  François Le Loarer; Daniel Pissaloux; Sarah Watson; Catherine Godfraind; Louise Galmiche-Rolland; Karen Silva; Laetitia Mayeur; Antoine Italiano; Audrey Michot; Gaëlle Pierron; Alexandre Vasiljevic; Dominique Ranchère-Vince; Jean Michel Coindre; Franck Tirode
Journal:  Am J Surg Pathol       Date:  2019-02       Impact factor: 6.394

2.  NUTM1 is a recurrent fusion gene partner in B-cell precursor acute lymphoblastic leukemia associated with increased expression of genes on chromosome band 10p12.31-12.2.

Authors:  Femke M Hormann; Alex Q Hoogkamer; H Berna Beverloo; Aurélie Boeree; Ilse Dingjan; Moniek M Wattel; Ronald W Stam; Gabriele Escherich; Rob Pieters; Monique L den Boer; Judith M Boer
Journal:  Haematologica       Date:  2019-03-14       Impact factor: 9.941

3.  Transcriptomic analysis of CIC and ATXN1L reveal a functional relationship exploited by cancer.

Authors:  Derek Wong; Kohl Lounsbury; Amy Lum; Jungeun Song; Susanna Chan; Veronique LeBlanc; Suganthi Chittaranjan; Marco Marra; Stephen Yip
Journal:  Oncogene       Date:  2018-08-09       Impact factor: 9.867

4.  New Brain Tumor Entities Emerge from Molecular Classification of CNS-PNETs.

Authors:  Dominik Sturm; Brent A Orr; Umut H Toprak; Volker Hovestadt; David T W Jones; David Capper; Martin Sill; Ivo Buchhalter; Paul A Northcott; Irina Leis; Marina Ryzhova; Christian Koelsche; Elke Pfaff; Sariah J Allen; Gnanaprakash Balasubramanian; Barbara C Worst; Kristian W Pajtler; Sebastian Brabetz; Pascal D Johann; Felix Sahm; Jüri Reimand; Alan Mackay; Diana M Carvalho; Marc Remke; Joanna J Phillips; Arie Perry; Cynthia Cowdrey; Rachid Drissi; Maryam Fouladi; Felice Giangaspero; Maria Łastowska; Wiesława Grajkowska; Wolfram Scheurlen; Torsten Pietsch; Christian Hagel; Johannes Gojo; Daniela Lötsch; Walter Berger; Irene Slavc; Christine Haberler; Anne Jouvet; Stefan Holm; Silvia Hofer; Marco Prinz; Catherine Keohane; Iris Fried; Christian Mawrin; David Scheie; Bret C Mobley; Matthew J Schniederjan; Mariarita Santi; Anna M Buccoliero; Sonika Dahiya; Christof M Kramm; André O von Bueren; Katja von Hoff; Stefan Rutkowski; Christel Herold-Mende; Michael C Frühwald; Till Milde; Martin Hasselblatt; Pieter Wesseling; Jochen Rößler; Ulrich Schüller; Martin Ebinger; Jens Schittenhelm; Stephan Frank; Rainer Grobholz; Istvan Vajtai; Volkmar Hans; Reinhard Schneppenheim; Karel Zitterbart; V Peter Collins; Eleonora Aronica; Pascale Varlet; Stephanie Puget; Christelle Dufour; Jacques Grill; Dominique Figarella-Branger; Marietta Wolter; Martin U Schuhmann; Tarek Shalaby; Michael Grotzer; Timothy van Meter; Camelia-Maria Monoranu; Jörg Felsberg; Guido Reifenberger; Matija Snuderl; Lynn Ann Forrester; Jan Koster; Rogier Versteeg; Richard Volckmann; Peter van Sluis; Stephan Wolf; Tom Mikkelsen; Amar Gajjar; Kenneth Aldape; Andrew S Moore; Michael D Taylor; Chris Jones; Nada Jabado; Matthias A Karajannis; Roland Eils; Matthias Schlesner; Peter Lichter; Andreas von Deimling; Stefan M Pfister; David W Ellison; Andrey Korshunov; Marcel Kool
Journal:  Cell       Date:  2016-02-25       Impact factor: 41.582

5.  Transcriptomic definition of molecular subgroups of small round cell sarcomas.

Authors:  Sarah Watson; Virginie Perrin; Delphine Guillemot; Stephanie Reynaud; Jean-Michel Coindre; Marie Karanian; Jean-Marc Guinebretière; Paul Freneaux; François Le Loarer; Megane Bouvet; Louise Galmiche-Rolland; Frédérique Larousserie; Elisabeth Longchampt; Dominique Ranchere-Vince; Gaelle Pierron; Olivier Delattre; Franck Tirode
Journal:  J Pathol       Date:  2018-03-30       Impact factor: 7.996

6.  Recurrent YAP1-MAML2 and YAP1-NUTM1 fusions in poroma and porocarcinoma.

Authors:  Shigeki Sekine; Tohru Kiyono; Eijitsu Ryo; Reiko Ogawa; Susumu Wakai; Hitoshi Ichikawa; Koyu Suzuki; Satoru Arai; Koji Tsuta; Mitsuaki Ishida; Yuko Sasajima; Naoki Goshima; Naoya Yamazaki; Taisuke Mori
Journal:  J Clin Invest       Date:  2019-05-30       Impact factor: 14.808

7.  NUTM1 Gene Fusions Characterize a Subset of Undifferentiated Soft Tissue and Visceral Tumors.

Authors:  Brendan C Dickson; Yun-Shao Sung; Marc K Rosenblum; Victor E Reuter; Mohammed Harb; Jay S Wunder; David Swanson; Cristina R Antonescu
Journal:  Am J Surg Pathol       Date:  2018-05       Impact factor: 6.394

8.  DNA methylation-based classification of central nervous system tumours.

Authors:  David Capper; David T W Jones; Martin Sill; Volker Hovestadt; Daniel Schrimpf; Dominik Sturm; Christian Koelsche; Felix Sahm; Lukas Chavez; David E Reuss; Annekathrin Kratz; Annika K Wefers; Kristin Huang; Kristian W Pajtler; Leonille Schweizer; Damian Stichel; Adriana Olar; Nils W Engel; Kerstin Lindenberg; Patrick N Harter; Anne K Braczynski; Karl H Plate; Hildegard Dohmen; Boyan K Garvalov; Roland Coras; Annett Hölsken; Ekkehard Hewer; Melanie Bewerunge-Hudler; Matthias Schick; Roger Fischer; Rudi Beschorner; Jens Schittenhelm; Ori Staszewski; Khalida Wani; Pascale Varlet; Melanie Pages; Petra Temming; Dietmar Lohmann; Florian Selt; Hendrik Witt; Till Milde; Olaf Witt; Eleonora Aronica; Felice Giangaspero; Elisabeth Rushing; Wolfram Scheurlen; Christoph Geisenberger; Fausto J Rodriguez; Albert Becker; Matthias Preusser; Christine Haberler; Rolf Bjerkvig; Jane Cryan; Michael Farrell; Martina Deckert; Jürgen Hench; Stephan Frank; Jonathan Serrano; Kasthuri Kannan; Aristotelis Tsirigos; Wolfgang Brück; Silvia Hofer; Stefanie Brehmer; Marcel Seiz-Rosenhagen; Daniel Hänggi; Volkmar Hans; Stephanie Rozsnoki; Jordan R Hansford; Patricia Kohlhof; Bjarne W Kristensen; Matt Lechner; Beatriz Lopes; Christian Mawrin; Ralf Ketter; Andreas Kulozik; Ziad Khatib; Frank Heppner; Arend Koch; Anne Jouvet; Catherine Keohane; Helmut Mühleisen; Wolf Mueller; Ute Pohl; Marco Prinz; Axel Benner; Marc Zapatka; Nicholas G Gottardo; Pablo Hernáiz Driever; Christof M Kramm; Hermann L Müller; Stefan Rutkowski; Katja von Hoff; Michael C Frühwald; Astrid Gnekow; Gudrun Fleischhack; Stephan Tippelt; Gabriele Calaminus; Camelia-Maria Monoranu; Arie Perry; Chris Jones; Thomas S Jacques; Bernhard Radlwimmer; Marco Gessi; Torsten Pietsch; Johannes Schramm; Gabriele Schackert; Manfred Westphal; Guido Reifenberger; Pieter Wesseling; Michael Weller; Vincent Peter Collins; Ingmar Blümcke; Martin Bendszus; Jürgen Debus; Annie Huang; Nada Jabado; Paul A Northcott; Werner Paulus; Amar Gajjar; Giles W Robinson; Michael D Taylor; Zane Jaunmuktane; Marina Ryzhova; Michael Platten; Andreas Unterberg; Wolfgang Wick; Matthias A Karajannis; Michel Mittelbronn; Till Acker; Christian Hartmann; Kenneth Aldape; Ulrich Schüller; Rolf Buslei; Peter Lichter; Marcel Kool; Christel Herold-Mende; David W Ellison; Martin Hasselblatt; Matija Snuderl; Sebastian Brandner; Andrey Korshunov; Andreas von Deimling; Stefan M Pfister
Journal:  Nature       Date:  2018-03-14       Impact factor: 49.962

  8 in total
  7 in total

1.  A novel ATXN1-DUX4 fusion expands the spectrum of 'CIC-rearranged sarcoma' of the CNS to include non-CIC alterations.

Authors:  Drew Pratt; Chandan Kumar-Sinha; Marcin Cieślik; Rohit Mehra; Hong Xiao; Lina Shao; Andrea Franson; Evan Cantor; Arul M Chinnaiyan; Rajen Mody; Zied Abdullaev; Kenneth Aldape; Martha Quezado; Sandra Camelo-Piragua
Journal:  Acta Neuropathol       Date:  2021-02-07       Impact factor: 17.088

2.  A novel PARD3B-NUTM1 fusion in an aggressive primary CNS embryonal tumor in a young adult.

Authors:  Kyungmin Ko; Takashi Kitani; Brent T Harris; Amjad N Anaizi; David Solomon; Arie Perry; Jeffrey Toretsky; Metin Ozdemirli
Journal:  Acta Neuropathol Commun       Date:  2020-07-17       Impact factor: 7.801

Review 3.  NUTM1-Rearranged Neoplasms-A Heterogeneous Group of Primitive Tumors with Expanding Spectrum of Histology and Molecular Alterations-An Updated Review.

Authors:  Wenyi Luo; Todd M Stevens; Phillip Stafford; Markku Miettinen; Zoran Gatalica; Semir Vranic
Journal:  Curr Oncol       Date:  2021-11-07       Impact factor: 3.677

Review 4.  The oncogenic fusion landscape in pediatric CNS neoplasms.

Authors:  Mieke Roosen; Zelda Odé; Jens Bunt; Marcel Kool
Journal:  Acta Neuropathol       Date:  2022-02-15       Impact factor: 15.887

Review 5.  NUT Carcinoma: Clinicopathologic Features, Molecular Genetics and Epigenetics.

Authors:  Vanessa Moreno; Karan Saluja; Sergio Pina-Oviedo
Journal:  Front Oncol       Date:  2022-03-16       Impact factor: 6.244

6.  Novel ATXN1/ATXN1L::NUTM2A fusions identified in aggressive infant sarcomas with gene expression and methylation patterns similar to CIC-rearranged sarcoma.

Authors:  Feng Xu; Angela N Viaene; Jenny Ruiz; Jeffrey Schubert; Jinhua Wu; Jiani Chen; Kajia Cao; Weixuan Fu; Rochelle Bagatell; Zhiqian Fan; Ariel Long; Luca Pagliaroli; Yiming Zhong; Minjie Luo; Portia A Kreiger; Lea F Surrey; Gerald B Wertheim; Kristina A Cole; Marilyn M Li; Mariarita Santi; Phillip B Storm
Journal:  Acta Neuropathol Commun       Date:  2022-07-14       Impact factor: 7.578

7.  Misleading Germ Cell Phenotype in Pulmonary NUT Carcinoma Harboring the ZNF532-NUTM1 Fusion.

Authors:  Abbas Agaimy; Florian Haller; André Renner; Jost Niedermeyer; Arndt Hartmann; Christopher A French
Journal:  Am J Surg Pathol       Date:  2022-02-01       Impact factor: 6.394

  7 in total

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