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.

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-GWAS01:11

Genome-wide Association Studies-GWAS

Genome-wide association studies or GWAS are used to identify whether common SNPs are associated with certain diseases. Suppose specific SNPs are more frequently observed in individuals with a particular disease than those without the disease. In that case, those SNPs are said to be associated with the disease. Chi-square analysis is performed to check the probability of the allele likely to be associated with the disease.
GWAS does not require the identification of the target gene involved in...
15.4K
Genomic DNA in Prokaryotes00:46

Genomic DNA in Prokaryotes

The genome of most prokaryotic organisms consists of double-stranded DNA organized into one circular chromosome in a region of cytoplasm called the nucleoid. The chromosome is tightly wound, or supercoiled, for efficient storage. Prokaryotes also contain other circular pieces of DNA called plasmids. These plasmids are smaller than the chromosome and often carry genes that confer adaptive functions, such as antibiotic resistance.
Genomic Diversity in Bacteria
Although bacterial genomes are much...
48.4K
Genomic DNA in Eukaryotes00:58

Genomic DNA in Eukaryotes

Eukaryotes have large genomes compared to prokaryotes. To fit their genomes into a cell, eukaryotic DNA is packaged extraordinarily tightly inside the nucleus. To achieve this, DNA is tightly wound around proteins called histones, which are packaged into nucleosomes that are joined by linker DNA and coil into chromatin fibers. Additional fibrous proteins further compact the chromatin, which is recognizable as chromosomes during certain phases of cell division.
52.4K
Loss of Tumor Suppressor Gene Functions01:12

Loss of Tumor Suppressor Gene Functions

Tumor suppressor genes are normal genes that can slow down cell division, repair DNA mistakes, or program the cells for apoptosis in case of irreparable damage. Hence, they play an essential role in preventing the proliferation of damaged cells.
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...
5.9K
Genomics02:02

Genomics

Genomics is the science of genomes: it is the study of all the genetic material of an organism. In humans, the genome consists of information carried in 23 pairs of chromosomes in the nucleus, as well as mitochondrial DNA. In genomics, both coding and non-coding DNA is sequenced and analyzed. Genomics allows a better understanding of all living things, their evolution, and their diversity. It has a myriad of uses: for example, to build phylogenetic trees, to improve productivity and...
39.8K
Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes02:16

Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes

The present-day mitochondrial and chloroplast genomes have retained some of the characteristics of their ancestral prokaryotes and also have acquired new attributes during their evolution within eukaryotic cells. Like prokaryotic genomes, mitochondrial and chloroplast genomes neither bind with histone-like proteins nor show complex packaging into chromosome-like structures, as observed in eukaryotes. Unlike mitotic cell divisions observed in eukaryotic cells, mitochondria and chloroplasts...
15.1K