Molecular origins of mutational spectra produced by the environmental carcinogenN-nitrosodimethylamine and SN1 chemotherapeutic agents

Author:

Armijo Amanda L1234ORCID,Thongararm Pennapa123,Fedeles Bogdan I123,Yau Judy123,Kay Jennifer E23,Corrigan Joshua J23,Chancharoen Marisa123,Chawanthayatham Supawadee123,Samson Leona D235,Carrasco Sebastian E46,Engelward Bevin P23,Fox James G234,Croy Robert G123,Essigmann John M123

Affiliation:

1. Department of Chemistry, Massachusetts Institute of Technology , Cambridge , MA  02139, USA

2. Department of Biological Engineering, Massachusetts Institute of Technology , Cambridge , MA  02139, USA

3. Center for Environmental Health Sciences, Massachusetts Institute of Technology , Cambridge , MA  02139, USA

4. Division of Comparative Medicine, Massachusetts Institute of Technology , Cambridge , MA  02139, USA

5. Department of Biology, Massachusetts Institute of Technology , Cambridge , MA  02139, USA

6. Laboratory of Comparative Pathology, Memorial Sloan Kettering Cancer Center, Weill Cornell Medicine, and The Rockefeller University , New York , NY  10065, USA

Abstract

AbstractDNA-methylating environmental carcinogens such as N-nitrosodimethylamine (NDMA) and certain alkylators used in chemotherapy form O6-methylguanine (m6G) as a functionally critical intermediate. NDMA is a multi-organ carcinogen found in contaminated water, polluted air, preserved foods, tobacco products, and many pharmaceuticals. Only ten weeks after exposure to NDMA, neonatally-treated mice experienced elevated mutation frequencies in liver, lung and kidney of ∼35-fold, 4-fold and 2-fold, respectively. High-resolution mutational spectra (HRMS) of liver and lung revealed distinctive patterns dominated by GC→AT mutations in 5’-Pu-G-3’ contexts, very similar to human COSMIC mutational signature SBS11. Commonly associated with alkylation damage, SBS11 appears in cancers treated with the DNA alkylator temozolomide (TMZ). When cells derived from the mice were treated with TMZ, N-methyl-N-nitrosourea, and streptozotocin (two other therapeutic methylating agents), all displayed NDMA-like HRMS, indicating mechanistically convergent mutational processes. The role of m6G in shaping the mutational spectrum of NDMA was probed by removing MGMT, the main cellular defense against m6G. MGMT-deficient mice displayed a strikingly enhanced mutant frequency, but identical HRMS, indicating that the mutational properties of these alkylators is likely owed to sequence-specific DNA binding. In sum, the HRMS of m6G-forming agents constitute an early-onset biomarker of exposure to DNA methylating carcinogens and drugs.

Funder

National Institute of Environmental Health Sciences

National Cancer Institute

MIT Jameel Water and Food Systems Laboratory

Publisher

Oxford University Press (OUP)

Subject

Cancer Research,Oncology

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