Related Experiment Video
Updated: Jan 21, 2026

Genome-wide Purification of Extrachromosomal Circular DNA from Eukaryotic Cells
Published on: April 4, 2016
Paradoxical association of TET loss of function with genome-wide DNA hypomethylation
Isaac F López-Moyado1,2,3, Ageliki Tsagaratou1, Hiroshi Yuita1
1Division of Signaling and Gene Expression, La Jolla Institute for Immunology, La Jolla, CA 92037.
Abstract:
Cancer genomes are characterized by focal increases in DNA methylation, co-occurring with widespread hypomethylation. Here, we show that TET loss of function results in a similar genomic footprint. Both 5hmC in wild-type (WT) genomes and DNA hypermethylation in TET-deficient genomes are largely confined to the active euchromatic compartment, consistent with the known functions of TET proteins in DNA demethylation and the known distribution of 5hmC at transcribed genes and active enhancers. In contrast, an unexpected DNA hypomethylation noted in multiple TET-deficient genomes is primarily observed in the heterochromatin compartment. In a mouse model of T cell lymphoma driven by TET deficiency (Tet2/3 DKO T cells), genomic analysis of malignant T cells revealed DNA hypomethylation in the heterochromatic genomic compartment, as well as reactivation of repeat elements and enrichment for single-nucleotide alterations, primarily in heterochromatic regions of the genome. Moreover, hematopoietic stem/precursor cells (HSPCs) doubly deficient for Tet2 and Dnmt3a displayed greater losses of DNA methylation than HSPCs singly deficient for Tet2 or Dnmt3a alone, potentially explaining the unexpected synergy between DNMT3A and TET2 mutations in myeloid and lymphoid malignancies. Tet1-deficient cells showed decreased localization of DNMT3A in the heterochromatin compartment compared with WT cells, pointing to a functional interaction between TET and DNMT proteins and providing a potential explanation for the hypomethylation observed in TET-deficient genomes. Our data suggest that TET loss of function may at least partially underlie the characteristic pattern of global hypomethylation coupled to regional hypermethylation observed in diverse cancer genomes, and highlight the potential contribution of heterochromatin hypomethylation to oncogenesis.
Insights
Loss of TET function in cancer cells mimics cancer
Area of Science:
- Epigenetics and Genomics
- Cancer Biology
- DNA Methylation Dynamics
Background:
- Cancer genomes exhibit focal DNA hypermethylation alongside widespread hypomethylation.
- TET proteins are crucial for DNA demethylation, influencing DNA methylation patterns.
Purpose of the Study:
- To investigate the genomic consequences of TET protein loss of function.
- To elucidate the role of TET deficiency in cancer-associated DNA methylation changes and oncogenesis.
Main Methods:
- Genomic analysis of wild-type and TET-deficient cells, including mouse models of T cell lymphoma.
- Analysis of DNA methylation patterns in euchromatin and heterochromatin compartments.
- Investigation of TET protein interactions with DNA methyltransferases (DNMTs).
Main Results:
- TET loss of function leads to DNA hypermethylation in euchromatin and unexpected hypomethylation in heterochromatin.
- TET deficiency in T cells promotes repeat element reactivation and mutations in heterochromatic regions.
- Combined loss of Tet2 and Dnmt3a in hematopoietic stem/precursor cells causes more severe DNA hypomethylation than single deficiencies.
Conclusions:
- TET loss of function contributes to the characteristic DNA methylation patterns observed in cancer genomes.
- Heterochromatin hypomethylation driven by TET deficiency may play a role in cancer development.
- Functional interactions between TET proteins and DNMT3A are critical in maintaining DNA methylation homeostasis and preventing oncogenesis.
Related Concept Videos
Genome-wide Association Studies-GWAS
GWAS does not require the identification of the target gene involved in...
Genomic DNA in Prokaryotes
Genomic Diversity in Bacteria
Although bacterial genomes are much...
Genomic DNA in Eukaryotes
Loss of Tumor Suppressor Gene Functions
When the tumor suppressor genes develop mutations or are lost, cells start growing out of control, leading to cancer. However, a single functional copy of the tumor suppressor gene is enough for the cells to maintain their normal functions and cell...
Genomics
Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes

