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Updated: Aug 11, 2025

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Roles of trans-lesion synthesis (TLS) DNA polymerases in tumorigenesis and cancer therapy
Jay Anand1, Lilly Chiou1,2, Carly Sciandra3
1Department of Pathology and Laboratory Medicine, University of North Carolina at Chapel Hill, 614 Brinkhous-Bullitt Building, Chapel Hill, NC 27599, USA.
Abstract:
DNA damage tolerance and mutagenesis are hallmarks and enabling characteristics of neoplastic cells that drive tumorigenesis and allow cancer cells to resist therapy. The 'Y-family' trans-lesion synthesis (TLS) DNA polymerases enable cells to replicate damaged genomes, thereby conferring DNA damage tolerance. Moreover, Y-family DNA polymerases are inherently error-prone and cause mutations. Therefore, TLS DNA polymerases are potential mediators of important tumorigenic phenotypes. The skin cancer-propensity syndrome xeroderma pigmentosum-variant (XPV) results from defects in the Y-family DNA Polymerase Pol eta (Polη) and compensatory deployment of alternative inappropriate DNA polymerases. However, the extent to which dysregulated TLS contributes to the underlying etiology of other human cancers is unclear. Here we consider the broad impact of TLS polymerases on tumorigenesis and cancer therapy. We survey the ways in which TLS DNA polymerases are pathologically altered in cancer. We summarize evidence that TLS polymerases shape cancer genomes, and review studies implicating dysregulated TLS as a driver of carcinogenesis. Because many cancer treatment regimens comprise DNA-damaging agents, pharmacological inhibition of TLS is an attractive strategy for sensitizing tumors to genotoxic therapies. Therefore, we discuss the pharmacological tractability of the TLS pathway and summarize recent progress on development of TLS inhibitors for therapeutic purposes.
Insights
Trans-lesion synthesis (TLS) DNA polymerases tolerate DNA damage and cause mutations, driving cancer development. Inhibiting TLS may sensitize tumors to genotoxic therapies, offering new cancer treatment strategies.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- DNA damage tolerance and mutagenesis are key features of cancer cells, enabling tumor growth and therapy resistance.
- Y-family trans-lesion synthesis (TLS) DNA polymerases replicate damaged DNA, conferring tolerance and causing mutations.
- Defects in Pol eta (Polη) cause xeroderma pigmentosum-variant (XPV), but the role of TLS in other cancers is unclear.
Purpose of the Study:
- To investigate the broad impact of TLS polymerases on tumorigenesis and cancer therapy.
- To survey pathological alterations of TLS polymerases in cancer.
- To review evidence implicating TLS in cancer genome shaping and carcinogenesis.
Main Methods:
- Literature review and survey of existing research on TLS polymerases in cancer.
- Analysis of the role of TLS in DNA damage tolerance and mutagenesis.
- Examination of TLS pathway's pharmacological tractability.
Main Results:
- TLS polymerases are pathologically altered in cancer and shape cancer genomes.
- Dysregulated TLS is implicated as a driver of carcinogenesis.
- TLS pathway is pharmacologically tractable, with ongoing development of TLS inhibitors.
Conclusions:
- TLS polymerases play a significant role in cancer development and progression.
- Inhibiting TLS is a promising strategy to sensitize tumors to genotoxic cancer therapies.
- Targeting TLS offers a potential avenue for novel cancer therapeutics.
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