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PMID: 27549193 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Comprehensive analyses of tumor immunity: implications for cancer immunotherapy.

Genome biology ·Vol. 17 ·No. 1 ·2016-00-22 ·Pages 174

Li B, Severson E, Pignon JC, Zhao H, Li T, Novak J, Jiang P, Shen H, Aster JC, Rodig S, Signoretti S, Liu JS, Liu XS

Abstract

Understanding the interactions between tumor and the host immune system is critical to finding prognostic biomarkers, reducing drug resistance, and developing new therapies. Novel computational methods are needed to estimate tumor-infiltrating immune cells and understand tumor-immune interactions in cancers. We analyze tumor-infiltrating immune cells in over 10,000 RNA-seq samples across 23 cancer types from The Cancer Genome Atlas (TCGA). Our computationally inferred immune infiltrates associate much more strongly with patient clinical features, viral infection status, and cancer genetic alterations than other computational approaches. Analysis of cancer/testis antigen expression and CD8 T-cell abundance suggests that MAGEA3 is a potential immune target in melanoma, but not in non-small cell lung cancer, and implicates SPAG5 as an alternative cancer vaccine target in multiple cancers. We find that melanomas expressing high levels of CTLA4 separate into two distinct groups with respect to CD8 T-cell infiltration, which might influence clinical responses to anti-CTLA4 agents. We observe similar dichotomy of TIM3 expression with respect to CD8 T cells in kidney cancer and validate it experimentally. The abundance of immune infiltration, together with our downstream analyses and findings, are accessible through TIMER, a public resource at http://cistrome.org/TIMER . We develop a computational approach to study tumor-infiltrating immune cells and their interactions with cancer cells. Our resource of immune-infiltrate levels, clinical associations, as well as predicted therapeutic markers may inform effective cancer vaccine and checkpoint blockade therapies.

Keywords
Cancer immunity Cancer immunotherapies Cancer vaccine Checkpoint blockade Tumor immune infiltration
MeSH Terms
Biomarkers, Tumor Databases, Genetic Disease Susceptibility Gene Expression Regulation, Neoplastic Genetic Variation Humans Immune System/cytology,immunology,metabolism Immunity Immunotherapy/methods Lymphocytes, Tumor-Infiltrating/immunology,metabolism Models, Biological Molecular Targeted Therapy Neoplasms/genetics,immunology,metabolism,therapy Signal Transduction
Chemicals
Biomarkers, Tumor
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Li Bo
Department of Biostatistics and Computational Biology, Dana Farber Cancer Institute, 450 Brookline Ave., Boston, MA, 02215, USA. | Department of Statistics, Harvard University, 1 Oxford St., Cambridge, MA, 02138, USA.
Severson Eric
Department of Biostatistics and Computational Biology, Dana Farber Cancer Institute, 450 Brookline Ave., Boston, MA, 02215, USA. | Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Pignon Jean-Christophe
Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Zhao Haoquan
Department of Biostatistics and Computational Biology, Dana Farber Cancer Institute, 450 Brookline Ave., Boston, MA, 02215, USA.
Li Taiwen
State Key Laboratory of Oral Diseases, West China Hospital of Stomatology, Sichuan University, 14 Renmin South Rd 3rd Section, Wuhou, Chengdu, Sichuan, 610041, China.
Novak Jesse
Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Jiang Peng
Department of Biostatistics and Computational Biology, Dana Farber Cancer Institute, 450 Brookline Ave., Boston, MA, 02215, USA.
Shen Hui
Center for Epigenetics, Van Andel Research Institute, 333 Bostwick Ave N.E., Grand Rapids, MI, 49503, USA.
Aster Jon C
Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Rodig Scott
Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Signoretti Sabina
Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, 75 Francis St., Boston, MA, 02215, USA.
Liu Jun S
Department of Statistics, Harvard University, 1 Oxford St., Cambridge, MA, 02138, USA. jliu@stat.harvard.edu.
Liu X Shirley
Department of Biostatistics and Computational Biology, Dana Farber Cancer Institute, 450 Brookline Ave., Boston, MA, 02215, USA. xsliu@jimmy.harvard.edu.
References (41)
41 references, click to expand
  1. Predictive correlates of response to the anti-PD-L1 antibody MPDL3280A in cancer patients.
    Nature. 2014 Nov 27;515(7528):563-7 PMID: 25428504
  2. The prognostic landscape of genes and infiltrating immune cells across human cancers.
    Nat Med. 2015 Aug;21(8):938-45 PMID: 26193342
  3. PD-1 blockade induces responses by inhibiting adaptive immune resistance.
    Nature. 2014 Nov 27;515(7528):568-71 PMID: 25428505
  4. Cancer immunotherapy based on mutation-specific CD4+ T cells in a patient with epithelial cancer.
    Science. 2014 May 9;344(6184):641-5 PMID: 24812403
  5. A general framework for analyzing tumor subclonality using SNP array and DNA sequencing data.
    Genome Biol. 2014 Sep 25;15(9):473 PMID: 25253082
  6. Tumor-infiltrating CD8+ lymphocytes predict clinical outcome in breast cancer.
    J Clin Oncol. 2011 May 20;29(15):1949-55 PMID: 21483002
  7. Long-term survival and immunological parameters in metastatic melanoma patients who responded to ipilimumab 10 mg/kg within an expanded access programme.
    Cancer Immunol Immunother. 2013 Jun;62(6):1021-8 PMID: 23591982
  8. An expression atlas of human primary cells: inference of gene function from coexpression networks.
    BMC Genomics. 2013 Sep 20;14:632 PMID: 24053356
  9. Induction of antigen-specific immunity with a vaccine targeting NY-ESO-1 to the dendritic cell receptor DEC-205.
    Sci Transl Med. 2014 Apr 16;6(232):232ra51 PMID: 24739759
  10. Deconvolution of blood microarray data identifies cellular activation patterns in systemic lupus erythematosus.
    PLoS One. 2009 Jul 01;4(7):e6098 PMID: 19568420
  11. Cancer immunoediting: integrating immunity's roles in cancer suppression and promotion.
    Science. 2011 Mar 25;331(6024):1565-70 PMID: 21436444
  12. Sperm-associated antigens as targets for cancer immunotherapy: expression pattern and humoral immune response in cancer patients.
    J Immunother. 2011 Jan;34(1):28-44 PMID: 21150711
  13. The blockade of immune checkpoints in cancer immunotherapy.
    Nat Rev Cancer. 2012 Mar 22;12(4):252-64 PMID: 22437870
  14. Molecular and genetic properties of tumors associated with local immune cytolytic activity.
    Cell. 2015 Jan 15;160(1-2):48-61 PMID: 25594174
  15. The Coordinated Actions of TIM-3 on Cancer and Myeloid Cells in the Regulation of Tumorigenicity and Clinical Prognosis in Clear Cell Renal Cell Carcinomas.
    Cancer Immunol Res. 2015 Sep;3(9):999-1007 PMID: 25783986
  16. Systematic identification of personal tumor-specific neoantigens in chronic lymphocytic leukemia.
    Blood. 2014 Jul 17;124(3):453-62 PMID: 24891321
  17. Pan-cancer patterns of somatic copy number alteration.
    Nat Genet. 2013 Oct;45(10):1134-40 PMID: 24071852
  18. Cancer classification using the Immunoscore: a worldwide task force.
    J Transl Med. 2012 Oct 03;10:205 PMID: 23034130
  19. Predicting immunogenic tumour mutations by combining mass spectrometry and exome sequencing.
    Nature. 2014 Nov 27;515(7528):572-6 PMID: 25428506
  20. Adjusting batch effects in microarray expression data using empirical Bayes methods.
    Biostatistics. 2007 Jan;8(1):118-27 PMID: 16632515
  21. Cancer exome analysis reveals a T-cell-dependent mechanism of cancer immunoediting.
    Nature. 2012 Feb 08;482(7385):400-4 PMID: 22318521
  22. Prognostic and predictive values of the immunoscore in patients with rectal cancer.
    Clin Cancer Res. 2014 Apr 1;20(7):1891-9 PMID: 24691640
  23. Systematic analysis of immune infiltrates in high-grade serous ovarian cancer reveals CD20, FoxP3 and TIA-1 as positive prognostic factors.
    PLoS One. 2009 Jul 29;4(7):e6412 PMID: 19641607
  24. Immune response in silico (IRIS): immune-specific genes identified from a compendium of microarray expression data.
    Genes Immun. 2005 Jun;6(4):319-31 PMID: 15789058
  25. CTLA-4 blockade with ipilimumab: long-term follow-up of 177 patients with metastatic melanoma.
    Clin Cancer Res. 2012 Apr 1;18(7):2039-47 PMID: 22271879
  26. The role of tumour-associated macrophages in tumour progression: implications for new anticancer therapies.
    J Pathol. 2002 Mar;196 (3):254-65 PMID: 11857487
  27. Genomic estimates of aneuploid content in glioblastoma multiforme and improved classification.
    Clin Cancer Res. 2012 Oct 15;18(20):5595-605 PMID: 22912392
  28. Characterization of the immunophenotypes and antigenomes of colorectal cancers reveals distinct tumor escape mechanisms and novel targets for immunotherapy.
    Genome Biol. 2015 Mar 31;16:64 PMID: 25853550
  29. Comprehensive genomic characterization of head and neck squamous cell carcinomas.
    Nature. 2015 Jan 29;517(7536):576-82 PMID: 25631445
  30. Clinical significance of poor CD3 response in head and neck cancer.
    Clin Cancer Res. 2002 Mar;8(3):745-51 PMID: 11895904
  31. Spatiotemporal dynamics of intratumoral immune cells reveal the immune landscape in human cancer.
    Immunity. 2013 Oct 17;39(4):782-95 PMID: 24138885
  32. Tumor-infiltrated immune response correlates with alterations in the apoptotic and cell cycle pathways in Hodgkin and Reed-Sternberg cells.
    Clin Cancer Res. 2008 Feb 1;14(3):685-91 PMID: 18245527
  33. The immune contexture in human tumours: impact on clinical outcome.
    Nat Rev Cancer. 2012 Mar 15;12 (4):298-306 PMID: 22419253
  34. Clinicopathological study on hepatocellular carcinoma with lymphocytic infiltration.
    Hepatology. 1998 Feb;27(2):407-14 PMID: 9462638
  35. Absolute quantification of somatic DNA alterations in human cancer.
    Nat Biotechnol. 2012 May;30(5):413-21 PMID: 22544022
  36. Cancer immunosurveillance and immunoediting: the roles of immunity in suppressing tumor development and shaping tumor immunogenicity.
    Adv Immunol. 2006;90:1-50 PMID: 16730260
  37. Novel cancer immunotherapy agents with survival benefit: recent successes and next steps.
    Nat Rev Cancer. 2011 Oct 24;11(11):805-12 PMID: 22020206
  38. The role of human glioma-infiltrating microglia/macrophages in mediating antitumor immune responses.
    Neuro Oncol. 2006 Jul;8(3):261-79 PMID: 16775224
  39. Evidence for in situ amplification of cytotoxic T-lymphocytes with antitumor activity in a human regressive melanoma.
    Cancer Res. 1993 Aug 1;53(15):3569-73 PMID: 8339262
  40. Breathing new life into immunotherapy: review of melanoma, lung and kidney cancer.
    Nat Rev Clin Oncol. 2014 Jan;11(1):24-37 PMID: 24247168
  41. Multiplatform analysis of 12 cancer types reveals molecular classification within and across tissues of origin.
    Cell. 2014 Aug 14;158(4):929-44 PMID: 25109877
Article Info
Journal
Genome biology
Abbr.
Genome Biol
ISSN
1474-760X
Published
2016-00-22
Epub
2016-00-22
Pages
174
Language
English
Region
England
NLM ID
100960660
PMCID
PMC4993001
Subset
IM
Grants
NHLBI NIH HHS · T32 HL007627 · United States
NCI NIH HHS · U01 CA180980 · United States
Corrections
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