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PMID: 22318521 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Cancer exome analysis reveals a T-cell-dependent mechanism of cancer immunoediting.

Nature ·Vol. 482 ·No. 7385 ·2012-02-08 ·Pages 400-4

Matsushita H, Vesely MD, Koboldt DC, Rickert CG, Uppaluri R, Magrini VJ, Arthur CD, White JM, Chen YS, Shea LK, Hundal J, Wendl MC, Demeter R, Wylie T, Allison JP, Smyth MJ, Old LJ, Mardis ER, Schreiber RD

Abstract

Cancer immunoediting, the process by which the immune system controls tumour outgrowth and shapes tumour immunogenicity, is comprised of three phases: elimination, equilibrium and escape. Although many immune components that participate in this process are known, its underlying mechanisms remain poorly defined. A central tenet of cancer immunoediting is that T-cell recognition of tumour antigens drives the immunological destruction or sculpting of a developing cancer. However, our current understanding of tumour antigens comes largely from analyses of cancers that develop in immunocompetent hosts and thus may have already been edited. Little is known about the antigens expressed in nascent tumour cells, whether they are sufficient to induce protective antitumour immune responses or whether their expression is modulated by the immune system. Here, using massively parallel sequencing, we characterize expressed mutations in highly immunogenic methylcholanthrene-induced sarcomas derived from immunodeficient Rag2(-/-) mice that phenotypically resemble nascent primary tumour cells. Using class I prediction algorithms, we identify mutant spectrin-β2 as a potential rejection antigen of the d42m1 sarcoma and validate this prediction by conventional antigen expression cloning and detection. We also demonstrate that cancer immunoediting of d42m1 occurs via a T-cell-dependent immunoselection process that promotes outgrowth of pre-existing tumour cell clones lacking highly antigenic mutant spectrin-β2 and other potential strong antigens. These results demonstrate that the strong immunogenicity of an unedited tumour can be ascribed to expression of highly antigenic mutant proteins and show that outgrowth of tumour cells that lack these strong antigens via a T-cell-dependent immunoselection process represents one mechanism of cancer immunoediting.

MeSH Terms
Algorithms Animals Carrier Proteins/genetics,immunology DNA-Binding Proteins/deficiency,genetics Exome/genetics,immunology Histocompatibility Antigens Class I/immunology Humans Immunologic Surveillance/immunology Male Methylcholanthrene Mice Microfilament Proteins/genetics,immunology Models, Immunological Neoplasms/chemically induced,genetics,immunology,pathology Reproducibility of Results Sarcoma/chemically induced,genetics,immunology,pathology T-Lymphocytes/immunology
Chemicals
Carrier Proteins DNA-Binding Proteins Histocompatibility Antigens Class I Microfilament Proteins Rag2 protein, mouse fodrin Methylcholanthrene
Authors & Affiliations
19 authors, click to expand affiliations / ORCID
Matsushita Hirokazu
Department of Pathology and Immunology, Washington University School of Medicine, 660 South Euclid Avenue, St Louis, Missouri 63110, USA.
Vesely Matthew D
Koboldt Daniel C
Rickert Charles G
Uppaluri Ravindra
Magrini Vincent J
Arthur Cora D
White J Michael
Chen Yee-Shiuan
Shea Lauren K
Hundal Jasreet
Wendl Michael C
Demeter Ryan
Wylie Todd
Allison James P
Smyth Mark J
Old Lloyd J
Mardis Elaine R
Schreiber Robert D
References (35)
35 references, click to expand
  1. SSAHA: a fast search method for large DNA databases.
    Genome Res. 2001 Oct;11(10):1725-9 PMID: 11591649
  2. The mutation spectrum revealed by paired genome sequences from a lung cancer patient.
    Nature. 2010 May 27;465(7297):473-7 PMID: 20505728
  3. Cancer immunoediting: from immunosurveillance to tumor escape.
    Nat Immunol. 2002 Nov;3(11):991-8 PMID: 12407406
  4. Endogenous oncogenic K-ras(G12D) stimulates proliferation and widespread neoplastic and developmental defects.
    Cancer Cell. 2004 Apr;5(4):375-87 PMID: 15093544
  5. Genome remodelling in a basal-like breast cancer metastasis and xenograft.
    Nature. 2010 Apr 15;464(7291):999-1005 PMID: 20393555
  6. Human T cell responses against melanoma.
    Annu Rev Immunol. 2006;24:175-208 PMID: 16551247
  7. Integrative genomics viewer.
    Nat Biotechnol. 2011 Jan;29(1):24-6 PMID: 21221095
  8. VarScan: variant detection in massively parallel sequencing of individual and pooled samples.
    Bioinformatics. 2009 Sep 1;25(17):2283-5 PMID: 19542151
  9. DNA sequencing of a cytogenetically normal acute myeloid leukaemia genome.
    Nature. 2008 Nov 6;456(7218):66-72 PMID: 18987736
  10. The Sequence Alignment/Map format and SAMtools.
    Bioinformatics. 2009 Aug 15;25(16):2078-9 PMID: 19505943
  11. Mutational evolution in a lobular breast tumour profiled at single nucleotide resolution.
    Nature. 2009 Oct 8;461(7265):809-13 PMID: 19812674
  12. Immunity to methylcholanthrene-induced sarcomas.
    J Natl Cancer Inst. 1957 Jun;18(6):769-78 PMID: 13502695
  13. Cancer immunoediting: integrating immunity's roles in cancer suppression and promotion.
    Science. 2011 Mar 25;331(6024):1565-70 PMID: 21436444
  14. Fast and accurate short read alignment with Burrows-Wheeler transform.
    Bioinformatics. 2009 Jul 15;25(14):1754-60 PMID: 19451168
  15. Adaptive immunity maintains occult cancer in an equilibrium state.
    Nature. 2007 Dec 6;450(7171):903-7 PMID: 18026089
  16. Natural selection of tumor variants in the generation of "tumor escape" phenotypes.
    Nat Immunol. 2002 Nov;3(11):999-1005 PMID: 12407407
  17. GATA-3-dependent enhancer activity in IL-4 gene regulation.
    J Immunol. 1998 Oct 15;161(8):3822-6 PMID: 9780146
  18. A census of human cancer genes.
    Nat Rev Cancer. 2004 Mar;4(3):177-83 PMID: 14993899
  19. Confronting complexity: real-world immunodominance in antiviral CD8+ T cell responses.
    Immunity. 2006 Oct;25(4):533-43 PMID: 17046682
  20. IFNgamma and lymphocytes prevent primary tumour development and shape tumour immunogenicity.
    Nature. 2001 Apr 26;410(6832):1107-11 PMID: 11323675
  21. Reliable prediction of T-cell epitopes using neural networks with novel sequence representations.
    Protein Sci. 2003 May;12(5):1007-17 PMID: 12717023
  22. Enhanced in vivo growth and resistance to rejection of tumor cells expressing dominant negative IFN gamma receptors.
    Immunity. 1994 Sep;1(6):447-56 PMID: 7895156
  23. A spatially and temporally restricted mouse model of soft tissue sarcoma.
    Nat Med. 2007 Aug;13(8):992-7 PMID: 17676052
  24. A comprehensive catalogue of somatic mutations from a human cancer genome.
    Nature. 2010 Jan 14;463(7278):191-6 PMID: 20016485
  25. IMMUNOLOGY OF EXPERIMENTAL TUMORS.
    Annu Rev Med. 1964;15:167-86 PMID: 14139934
  26. High-resolution characterization of a hepatocellular carcinoma genome.
    Nat Genet. 2011 May;43(5):464-9 PMID: 21499249
  27. Natural innate and adaptive immunity to cancer.
    Annu Rev Immunol. 2011;29:235-71 PMID: 21219185
  28. A small-cell lung cancer genome with complex signatures of tobacco exposure.
    Nature. 2010 Jan 14;463(7278):184-90 PMID: 20016488
  29. A gene encoding an antigen recognized by cytolytic T lymphocytes on a human melanoma.
    Science. 1991 Dec 13;254(5038):1643-7 PMID: 1840703
  30. Tumorigenic methylcholanthrene transformants of C3H/10T1/2 cells have a common nucleotide alteration in the c-Ki-ras gene.
    Proc Natl Acad Sci U S A. 1989 Mar;86(5):1608-11 PMID: 2646640
  31. Epitope landscape in breast and colorectal cancer.
    Cancer Res. 2008 Feb 1;68(3):889-92 PMID: 18245491
  32. Whole-genome sequencing identifies recurrent mutations in chronic lymphocytic leukaemia.
    Nature. 2011 Jun 05;475(7354):101-5 PMID: 21642962
  33. Immune response in mice that lack the interferon-gamma receptor.
    Science. 1993 Mar 19;259(5102):1742-5 PMID: 8456301
  34. Functional role of type I and type II interferons in antiviral defense.
    Science. 1994 Jun 24;264(5167):1918-21 PMID: 8009221
  35. The three Es of cancer immunoediting.
    Annu Rev Immunol. 2004;22:329-60 PMID: 15032581
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2012-02-08
Epub
2012-00-08
Pages
400-4
Language
English
Region
England
NLM ID
0410462
PMCID
PMC3874809
Subset
IM
Grants
Worldwide Cancer Research · 08-0577 · United Kingdom
NCI NIH HHS · R01 CA043059 · United States
NCI NIH HHS · U01 CA141541 · United States
Howard Hughes Medical Institute · United States
Corrections
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