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PMID: 28420421 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Analysis of 100,000 human cancer genomes reveals the landscape of tumor mutational burden.

Genome medicine ·Vol. 9 ·No. 1 ·2017-00-19 ·Pages 34

Chalmers ZR, Connelly CF, Fabrizio D, Gay L, Ali SM, Ennis R, Schrock A, Campbell B, Shlien A, Chmielecki J, Huang F, He Y, Sun J, Tabori U, Kennedy M, Lieber DS, Roels S, White J, Otto GA, Ross JS, Garraway L, Miller VA, Stephens PJ, Frampton GM

Abstract

High tumor mutational burden (TMB) is an emerging biomarker of sensitivity to immune checkpoint inhibitors and has been shown to be more significantly associated with response to PD-1 and PD-L1 blockade immunotherapy than PD-1 or PD-L1 expression, as measured by immunohistochemistry (IHC). The distribution of TMB and the subset of patients with high TMB has not been well characterized in the majority of cancer types. In this study, we compare TMB measured by a targeted comprehensive genomic profiling (CGP) assay to TMB measured by exome sequencing and simulate the expected variance in TMB when sequencing less than the whole exome. We then describe the distribution of TMB across a diverse cohort of 100,000 cancer cases and test for association between somatic alterations and TMB in over 100 tumor types. We demonstrate that measurements of TMB from comprehensive genomic profiling are strongly reflective of measurements from whole exome sequencing and model that below 0.5 Mb the variance in measurement increases significantly. We find that a subset of patients exhibits high TMB across almost all types of cancer, including many rare tumor types, and characterize the relationship between high TMB and microsatellite instability status. We find that TMB increases significantly with age, showing a 2.4-fold difference between age 10 and age 90 years. Finally, we investigate the molecular basis of TMB and identify genes and mutations associated with TMB level. We identify a cluster of somatic mutations in the promoter of the gene PMS2, which occur in 10% of skin cancers and are highly associated with increased TMB. These results show that a CGP assay targeting ~1.1 Mb of coding genome can accurately assess TMB compared with sequencing the whole exome. Using this method, we find that many disease types have a substantial portion of patients with high TMB who might benefit from immunotherapy. Finally, we identify novel, recurrent promoter mutations in PMS2, which may be another example of regulatory mutations contributing to tumorigenesis.

Keywords
Cancer genomics Mismatch repair PMS2 Tumor mutational burden
MeSH Terms
Adolescent Adult Age Factors Aged Aged, 80 and over Cell Transformation, Neoplastic/genetics Child DNA Mutational Analysis DNA, Neoplasm Exome Genome, Human Humans Middle Aged Mismatch Repair Endonuclease PMS2 Mutation Neoplasms/epidemiology,genetics,metabolism,pathology Young Adult
Chemicals
DNA, Neoplasm Mismatch Repair Endonuclease PMS2
Authors & Affiliations
24 authors, click to expand affiliations / ORCID
Chalmers Zachary R
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Connelly Caitlin F
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Fabrizio David
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Gay Laurie
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Ali Siraj M
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Ennis Riley
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Schrock Alexa
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Campbell Brittany
The Hospital for Sick Children, Toronto, Ontario, Canada.
Shlien Adam
The Hospital for Sick Children, Toronto, Ontario, Canada.
Chmielecki Juliann
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Huang Franklin
Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts, USA.
He Yuting
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Sun James
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Tabori Uri
The Hospital for Sick Children, Toronto, Ontario, Canada.
Kennedy Mark
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Lieber Daniel S
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Roels Steven
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
White Jared
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Otto Geoffrey A
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Ross Jeffrey S
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Garraway Levi
Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts, USA. | Broad Institute of MIT and Harvard, Cambridge, Massachusetts, USA.
Miller Vincent A
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Stephens Phillip J
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA.
Frampton Garrett M
Foundation Medicine Inc., 150 Second St., Cambridge, MA, 02141, USA. [email protected].
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Article Info
Journal
Genome medicine
Abbr.
Genome Med
ISSN
1756-994X
Published
2017-00-19
Epub
2017-00-19
Pages
34
Language
English
Region
England
NLM ID
101475844
PMCID
PMC5395719
Subset
IM
Analysis Services
Analysis Services

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