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Updated: Feb 11, 2026

An Engineered Split-TET2 Enzyme for Chemical-inducible DNA Hydroxymethylation and Epigenetic Remodeling
Published on: December 18, 2017
PML Recruits TET2 to Regulate DNA Modification and Cell Proliferation in Response to Chemotherapeutic Agent
Chengli Song1, Lina Wang1, Xiaoyan Wu1
1Department of Oncology, Second Affiliated Hospital, Institute of Cancer Stem Cell, DaLian Medical University, Dalian, China.
Abstract:
Aberrant DNA methylation plays a critical role in the development and progression of cancer. Failure to demethylate and to consequently reactivate methylation-silenced genes in cancer contributes to chemotherapeutic resistance, yet the regulatory mechanisms of DNA demethylation in response to chemotherapeutic agents remain unclear. Here, we show that promyelocytic leukemia (PML) recruits ten-eleven translocation dioxygenase 2 (TET2) to regulate DNA modification and cell proliferation in response to chemotherapeutic agents. TET2 was required by multiple chemotherapeutic agents (such as doxorubicin) to prmote 5-hydroxymethylcytosine (5hmC) formation. Stable isotope labeling with amino acids in cell culture, followed by immunoprecipitation-mass spectrometry, identified potential binding partners of TET2, of which PML mostly enhanced 5hmC formation. PML physically bound to TET2 via the PML C-terminal domain and recruited TET2 to PML-positive nuclear bodies. This interaction was disrupted by the PML-RARA t(15;17) mutation, which stems from chromosomal translocation between DNA encoding the C-terminal domain of PML and the retinoic acid receptor alpha (RARA) gene. In response to chemotherapeutic drugs, PML recruited TET2, regulated DNA modification, reactivated methylation-silenced genes, and impaired cell proliferation. Knockout of PML abolished doxorubicin-promoted DNA modification. In addition, PML and TET2 levels positively correlated with improved overall survival in patients with head and neck cancer. These findings shed insight into the regulatory mechanisms of DNA modification in response to chemotherapeutic agents.Significance: Promyeloctic leukemia protein recruits TET2, regulating DNA modification and cell proliferation in response to chemotherapeutic agents. Cancer Res; 78(10); 2475-89. ©2018 AACR.
Insights
Promyelocytic leukemia protein (PML) recruits ten-eleven translocation dioxygenase 2 (TET2) to regulate DNA modification and gene reactivation in cancer cells treated with chemotherapy, improving patient survival.
Area of Science:
- Cancer biology
- Epigenetics
- Molecular oncology
Background:
- Aberrant DNA methylation is crucial in cancer development and chemoresistance.
- Mechanisms of DNA demethylation in response to chemotherapy are not fully understood.
Purpose of the Study:
- To investigate the role of promyelocytic leukemia (PML) protein in regulating DNA modification and gene expression in response to chemotherapeutic agents.
- To elucidate the interaction between PML and ten-eleven translocation dioxygenase 2 (TET2) in cancer cells.
Main Methods:
- Utilized stable isotope labeling with amino acids in cell culture followed by immunoprecipitation-mass spectrometry to identify TET2 binding partners.
- Investigated the physical interaction between PML and TET2 using various biochemical assays.
- Assessed the impact of PML knockout on DNA modification in response to doxorubicin treatment.
Main Results:
- PML recruits TET2 to PML-nuclear bodies, enhancing 5-hydroxymethylcytosine (5hmC) formation in response to chemotherapeutic agents like doxorubicin.
- PML-TET2 interaction is disrupted by the PML-RARA fusion protein found in acute promyelocytic leukemia.
- PML knockout abrogated doxorubicin-induced DNA modification, and PML and TET2 levels correlated with improved survival in head and neck cancer patients.
Conclusions:
- PML plays a critical role in mediating DNA demethylation and gene reactivation in response to chemotherapy via TET2 recruitment.
- The PML-TET2 axis represents a potential therapeutic target for overcoming chemoresistance.
- PML and TET2 are prognostic biomarkers for head and neck cancer survival.
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