Literature DB >> 29788332

Constitutive Interferon Pathway Activation in Tumors as an Efficacy Determinant Following Oncolytic Virotherapy.

Cheyne Kurokawa1, Ianko D Iankov1, S Keith Anderson2, Ileana Aderca1, Alexey A Leontovich2, Matthew J Maurer2, Ann L Oberg2, Mark A Schroeder3, Caterina Giannini4, Suzanne M Greiner5, Marc A Becker5, E Aubrey Thompson6, Paul Haluska5, Mark E Jentoft4, Ian F Parney7, S John Weroha5, Jin Jen4,8, Jann N Sarkaria3, Evanthia Galanis1,5.   

Abstract

Background: Attenuated measles virus (MV) strains are promising agents currently being tested against solid tumors or hematologic malignancies in ongoing phase I and II clinical trials; factors determining oncolytic virotherapy success remain poorly understood, however.
Methods: We performed RNA sequencing and gene set enrichment analysis to identify pathways differentially activated in MV-resistant (n = 3) and -permissive (n = 2) tumors derived from resected human glioblastoma (GBM) specimens and propagated as xenografts (PDX). Using a unique gene signature we identified, we generated a diagonal linear discriminant analysis (DLDA) classification algorithm to predict MV responders and nonresponders, which was validated in additional randomly selected GBM and ovarian cancer PDX and 10 GBM patients treated with MV in a phase I trial. GBM PDX lines were also treated with the US Food and Drug Administration-approved JAK inhibitor, ruxolitinib, for 48 hours prior to MV infection and virus production, STAT1/3 signaling and interferon stimulated gene expression was assessed. All statistical tests were two-sided.
Results: Constitutive interferon pathway activation, as reflected in the DLDA algorithm, was identified as the key determinant for MV replication, independent of virus receptor expression, in MV-permissive and -resistant GBM PDXs. Using these lines as the training data for the DLDA algorithm, we confirmed the accuracy of our algorithm in predicting MV response in randomly selected GBM PDX ovarian cancer PDXs. Using the DLDA prediction algorithm, we demonstrate that virus replication in patient tumors is inversely correlated with expression of this resistance gene signature (ρ = -0.717, P = .03). In vitro inhibition of the interferon response pathway with the JAK inhibitor ruxolitinib was able to overcome resistance and increase virus production (1000-fold, P = .03) in GBM PDX lines. Conclusions: These findings document a key mechanism of tumor resistance to oncolytic MV therapy and describe for the first time the development of a prediction algorithm to preselect for oncolytic treatment or combinatorial strategies.

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Year:  2018        PMID: 29788332      PMCID: PMC6186520          DOI: 10.1093/jnci/djy033

Source DB:  PubMed          Journal:  J Natl Cancer Inst        ISSN: 0027-8874            Impact factor:   13.506


  45 in total

1.  The measles virus phosphoprotein interacts with the linker domain of STAT1.

Authors:  Patricia Devaux; Lauren Priniski; Roberto Cattaneo
Journal:  Virology       Date:  2013-07-13       Impact factor: 3.616

2.  Expression of immunomodulatory neutrophil-activating protein of Helicobacter pylori enhances the antitumor activity of oncolytic measles virus.

Authors:  Ianko D Iankov; Cory Allen; Mark J Federspiel; Rae M Myers; Kah Whye Peng; James N Ingle; Stephen J Russell; Evanthia Galanis
Journal:  Mol Ther       Date:  2012-02-14       Impact factor: 11.454

3.  Positive regulation of interferon regulatory factor 3 activation by Herc5 via ISG15 modification.

Authors:  He-Xin Shi; Kai Yang; Xing Liu; Xin-Yi Liu; Bo Wei; Yu-Fei Shan; Lian-Hui Zhu; Chen Wang
Journal:  Mol Cell Biol       Date:  2010-03-22       Impact factor: 4.272

4.  Measles virus circumvents the host interferon response by different actions of the C and V proteins.

Authors:  Yuichiro Nakatsu; Makoto Takeda; Shinji Ohno; Yuta Shirogane; Masaharu Iwasaki; Yusuke Yanagi
Journal:  J Virol       Date:  2008-06-18       Impact factor: 5.103

5.  Delineation of MGMT Hypermethylation as a Biomarker for Veliparib-Mediated Temozolomide-Sensitizing Therapy of Glioblastoma.

Authors:  Shiv K Gupta; Sani H Kizilbash; Brett L Carlson; Ann C Mladek; Felix Boakye-Agyeman; Katrina K Bakken; Jenny L Pokorny; Mark A Schroeder; Paul A Decker; Ling Cen; Jeanette E Eckel-Passow; Gobinda Sarkar; Karla V Ballman; Joel M Reid; Robert B Jenkins; Roeland G Verhaak; Erik P Sulman; Gaspar J Kitange; Jann N Sarkaria
Journal:  J Natl Cancer Inst       Date:  2015-11-27       Impact factor: 13.506

6.  Localized oncolytic virotherapy overcomes systemic tumor resistance to immune checkpoint blockade immunotherapy.

Authors:  Jedd D Wolchok; James P Allison; Dmitriy Zamarin; Rikke B Holmgaard; Sumit K Subudhi; Joon Seok Park; Mena Mansour; Peter Palese; Taha Merghoub
Journal:  Sci Transl Med       Date:  2014-03-05       Impact factor: 17.956

7.  Safety studies on intrahepatic or intratumoral injection of oncolytic vesicular stomatitis virus expressing interferon-beta in rodents and nonhuman primates.

Authors:  Nathan Jenks; Rae Myers; Suzanne M Greiner; Jill Thompson; Emily K Mader; Andrew Greenslade; Guy E Griesmann; Mark J Federspiel; Jorge Rakela; Mitesh J Borad; Richard G Vile; Glen N Barber; Thomas R Meier; Michael C Blanco; Stephanie K Carlson; Stephen J Russell; Kah-Whye Peng
Journal:  Hum Gene Ther       Date:  2010-04       Impact factor: 5.695

8.  Tumor cell marker PVRL4 (nectin 4) is an epithelial cell receptor for measles virus.

Authors:  Ryan S Noyce; Daniel G Bondre; Michael N Ha; Liang-Tzung Lin; Gary Sisson; Ming-Sound Tsao; Christopher D Richardson
Journal:  PLoS Pathog       Date:  2011-08-25       Impact factor: 6.823

9.  GeneCodis: interpreting gene lists through enrichment analysis and integration of diverse biological information.

Authors:  Ruben Nogales-Cadenas; Pedro Carmona-Saez; Miguel Vazquez; Cesar Vicente; Xiaoyuan Yang; Francisco Tirado; Jose María Carazo; Alberto Pascual-Montano
Journal:  Nucleic Acids Res       Date:  2009-05-22       Impact factor: 16.971

10.  A prediction-based resampling method for estimating the number of clusters in a dataset.

Authors:  Sandrine Dudoit; Jane Fridlyand
Journal:  Genome Biol       Date:  2002-06-25       Impact factor: 13.583

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  32 in total

Review 1.  Oncolytic Measles Virotherapy and Opposition to Measles Vaccination.

Authors:  Stephen J Russell; Dusica Babovic-Vuksanovic; Alice Bexon; Roberto Cattaneo; David Dingli; Angela Dispenzieri; David R Deyle; Mark J Federspiel; Adele Fielding; Eva Galanis; Martha Q Lacy; Bradley C Leibovich; Minetta C Liu; Miguel Muñoz-Alía; Tanner C Miest; Julian R Molina; Sabine Mueller; Scott H Okuno; Nandakumar Packiriswamy; Tobias Peikert; Corey Raffel; Frits Van Rhee; Guy Ungerechts; Paul R Young; Yumei Zhou; Kah-Whye Peng
Journal:  Mayo Clin Proc       Date:  2019-06-22       Impact factor: 7.616

2.  A key anti-viral protein, RSAD2/VIPERIN, restricts the release of measles virus from infected cells.

Authors:  Cheyne Kurokawa; Ianko D Iankov; Evanthia Galanis
Journal:  Virus Res       Date:  2019-01-23       Impact factor: 3.303

3.  Type 1 Interferon Responses Underlie Tumor-Selective Replication of Oncolytic Measles Virus.

Authors:  Sarah Aref; Anna Z Castleton; Katharine Bailey; Richard Burt; Aditi Dey; Daniel Leongamornlert; Rachel J Mitchell; Dina Okasha; Adele K Fielding
Journal:  Mol Ther       Date:  2020-02-04       Impact factor: 11.454

4.  Retargeted and Stealth-Modified Oncolytic Measles Viruses for Systemic Cancer Therapy in Measles Immune Patients.

Authors:  Eugene S Bah; Rebecca A Nace; Kah Whye Peng; Miguel Ángel Muñoz-Alía; Stephen J Russell
Journal:  Mol Cancer Ther       Date:  2020-08-26       Impact factor: 6.261

Review 5.  Evolving Role of Oncolytic Virotherapy: Challenges and Prospects in Clinical Practice.

Authors:  Omeed Moaven; Christopher W Mangieri; John A Stauffer; Panos Z Anastasiadis; Mitesh J Borad
Journal:  JCO Precis Oncol       Date:  2021-02-24

6.  Lassa-VSV chimeric virus targets and destroys human and mouse ovarian cancer by direct oncolytic action and by initiating an anti-tumor response.

Authors:  A N van den Pol; X Zhang; E Lima; M Pitruzzello; N Albayrak; A Alvero; J N Davis; G Mor
Journal:  Virology       Date:  2020-11-12       Impact factor: 3.616

Review 7.  Unique challenges for glioblastoma immunotherapy-discussions across neuro-oncology and non-neuro-oncology experts in cancer immunology. Meeting Report from the 2019 SNO Immuno-Oncology Think Tank.

Authors:  Pavlina Chuntova; Frances Chow; Payal B Watchmaker; Mildred Galvez; Amy B Heimberger; Evan W Newell; Aaron Diaz; Ronald A DePinho; Ming O Li; E John Wherry; Duane Mitchell; Masaki Terabe; Derek A Wainwright; Jay A Berzofsky; Christel Herold-Mende; James R Heath; Michael Lim; Kim A Margolin; E Antonio Chiocca; Noriyuki Kasahara; Benjamin M Ellingson; Christine E Brown; Yvonne Chen; Peter E Fecci; David A Reardon; Gavin P Dunn; Linda M Liau; Joseph F Costello; Wolfgang Wick; Timothy Cloughesy; William C Timmer; Patrick Y Wen; Robert M Prins; Michael Platten; Hideho Okada
Journal:  Neuro Oncol       Date:  2021-03-25       Impact factor: 12.300

8.  MicroRNA-sensitive oncolytic measles virus for chemovirotherapy of pancreatic cancer.

Authors:  Hans Martin Singh; Mathias Felix Leber; Sascha Bossow; Christine E Engeland; Jan Dessila; Christian Grossardt; Karim Zaoui; John C Bell; Dirk Jäger; Christof von Kalle; Guy Ungerechts
Journal:  Mol Ther Oncolytics       Date:  2021-05-05       Impact factor: 7.200

9.  Immunostimulatory bacterial antigen-armed oncolytic measles virotherapy significantly increases the potency of anti-PD1 checkpoint therapy.

Authors:  Eleni Panagioti; Cheyne Kurokawa; Kimberly Viker; Arun Ammayappan; S Keith Anderson; Sotiris Sotiriou; Kyriakos Chatzopoulos; Katayoun Ayasoufi; Aaron J Johnson; Ianko D Iankov; Evanthia Galanis
Journal:  J Clin Invest       Date:  2021-07-01       Impact factor: 14.808

Review 10.  Oncolytic Viruses for Malignant Glioma: On the Verge of Success?

Authors:  Yogesh R Suryawanshi; Autumn J Schulze
Journal:  Viruses       Date:  2021-07-02       Impact factor: 5.048

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