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Updated: Jun 24, 2025

Efficient Purification and LC-MS/MS-based Assay Development for Ten-Eleven Translocation-2 5-Methylcytosine Dioxygenase
Published on: October 15, 2018
DNA demethylase Tet2 promotes the terminal maturation of natural killer cells
Yuqing Lin1,2,3, Biyun Yang1, Hailin Liu2,4
1Department of Immunology, School of Basic Medical, Jiamusi University, Jiamusi, 154007, China.
Abstract:
The cytotoxicity feature to eliminate malignant cells makes natural killer (NK) cells a candidate for tumor immunotherapy. However, this scenario is currently hampered by inadequate understanding of the regulatory mechanisms of NK cell development. Ten-Eleven-Translocation 2 (Tet2) is a demethylase whose mutation was recently shown to cause phenotypic defects in NK cells. However, the role of Tet2 in the development and maturation of NK cells is not entirely clear. Here we studied the modulatory role of Tet2 in NK cell development and maturation by generating hematopoietic Tet2 knockout mice and mice with Tet2 conditional deletion in NKp46+ NK cells. The results showed that both hematopoietic and NK cell conditional deletion of Tet2 had no effect on the early steps of NK cell development, but impaired the terminal maturation of NK cells defined by CD11b, CD43, and KLRG1 expression. In the liver, Tet2 deletion not only prevented the terminal maturation of NK cells, but also increased the proportion of type 1 innate lymphoid cells (ILC1s) and reduced the proportion of conventional NK cells (cNK). Moreover, hematopoietic deletion of Tet2 lowered the protein levels of perforin in NK cells. Furthermore, hematopoietic deletion of Tet2 downregulated the protein levels of Eomesodermin (Eomes), but not T-bet, in NK cells. In conclusion, our results demonstrate that Tet2 plays an important role in the terminal maturation of NK cells, and the Eomes transcription factor may be involved.
Insights
Ten-Eleven-Translocation 2 (Tet2) is crucial for natural killer (NK) cell maturation. Tet2 deficiency impairs NK cell terminal maturation and affects their development, impacting tumor immunotherapy potential.
Area of Science:
- Immunology
- Cell Biology
- Epigenetics
Background:
- Natural killer (NK) cells are vital for tumor immunotherapy due to their cytotoxic properties.
- Understanding NK cell development regulation is key to advancing immunotherapy.
- Mutations in Ten-Eleven-Translocation 2 (Tet2) affect NK cell phenotype, but its precise role in development remains unclear.
Purpose of the Study:
- To investigate the role of Tet2 in NK cell development and maturation.
- To elucidate the impact of Tet2 deficiency on NK cell populations and function.
Main Methods:
- Generated Tet2 knockout mice and Tet2-conditional knockout mice specifically in NKp46+ NK cells.
- Analyzed NK cell development, maturation markers (CD11b, CD43, KLRG1), and cell populations (ILC1s, cNK) in the liver.
- Assessed protein levels of perforin and transcription factors (Eomes, T-bet) in NK cells.
Main Results:
- Tet2 deletion did not affect early NK cell development but impaired terminal maturation.
- Tet2 deficiency increased innate lymphoid type 1 cells (ILC1s) and decreased conventional NK cells (cNK) in the liver.
- Hematopoietic Tet2 deletion reduced perforin and Eomesodermin (Eomes) protein levels in NK cells.
Conclusions:
- Tet2 plays a significant role in the terminal maturation of NK cells.
- The transcription factor Eomes may mediate Tet2's function in NK cell maturation.
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