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Lysine Methyltransferase 2D Regulates Immune Response and Metastasis in Head and Neck Cancer
Jianchun Wu1, Crystal Chun1, Angelica M Lagunas1
1University of Illinois Cancer Center, Chicago, IL, U.S.A.
Background/Aim:
The most frequently altered epigenetic modifier in head and neck squamous carcinoma (HNSC) is the histone methyltransferase KMT2D. KMT2D catalyzes methylation of histone H3K4 resulting in open chromatin and the activation of target genes. Tumor-associated macrophages (TAMs) promote cancer growth by causing T lymphocyte exhaustion. C-C motif chemokine ligand 2 (CCL2) is a potent TAM chemotactic factor. In HNSC, TAMs have been associated with unfavorable patient outcomes and metastasis. The aim of this study was to determine the role of KMT2D in HNSC using genetically engineered in vivo models.
Materials And Methods:
KMT2D protein expression was correlated with lymph node metastasis in human HNSC using immunohistochemistry. Genetically engineered KMT2D and CCL2 knockout models of HNSC were created in vivo. HNSC was characterized using qRT-PCR, histopathology, and immunohistochemistry/immunofluorescence microscopy. We also analyzed the effects of KMT2D expression on the proliferation and migration of human HNSC lines. The regulation of the CCL2 gene by KMT2D was characterized using chromatin immunoprecipitation-sequencing assay of transposase accessible chromatin-sequencing, and chromatin conformation capture-sequencing.
Results:
Human HNSC cases with high KMT2D expression exhibited significantly increased lymph node metastasis. Reduced KMT2D expression in our genetically engineered model correlated with reduced lymph node metastasis, longer latency, and slow tumor growth. CCL2 expression was decreased in KMT2D deficient HNSC, which correlated with a reduced TAM gene expression signature. Genomic experiments demonstrated that KMT2D directly targeted the CCL2 gene. A new genetically engineered in vivo model of CCL2-null HNSC was created, recapitulating the KMT2D deficient phenotype and showing a decreased T lymphocyte exhaustion signature.
Conclusion:
KMT2D regulates CCL2-mediated immune response and metastasis in HNSC.
Insights
The histone methyltransferase KMT2D promotes head and neck squamous cell carcinoma (HNSC) metastasis by regulating CCL2. Targeting KMT2D may reduce metastasis and T lymphocyte exhaustion in HNSC.
Area of Science:
- Epigenetics
- Cancer Biology
- Immunology
Background:
- KMT2D is frequently altered in head and neck squamous cell carcinoma (HNSC).
- KMT2D regulates gene expression via histone methylation.
- Tumor-associated macrophages (TAMs) promote HNSC growth and metastasis, partly by inducing T lymphocyte exhaustion.
- CCL2 is a key chemokine attracting TAMs to tumors.
Purpose of the Study:
- To investigate the role of KMT2D in HNSC progression.
- To elucidate the mechanism by which KMT2D influences metastasis and the tumor immune microenvironment.
Main Methods:
- Correlation of KMT2D expression with lymph node metastasis in human HNSC.
- Generation and analysis of genetically engineered KMT2D and CCL2 knockout HNSC models.
- Assessment of HNSC characteristics using molecular and histological techniques.
- Investigation of KMT2D's effect on HNSC cell proliferation and migration.
- Genomic analyses (ChIP-seq, ATAC-seq, Hi-C) to identify KMT2D regulatory targets.
Main Results:
- High KMT2D expression in HNSC correlates with increased lymph node metastasis.
- KMT2D deficiency in vivo reduces metastasis, delays tumor onset, and slows growth.
- KMT2D deficiency leads to decreased CCL2 expression and a reduced TAM gene signature.
- KMT2D directly targets the CCL2 gene.
- CCL2-null HNSC models exhibit reduced T lymphocyte exhaustion.
Conclusions:
- KMT2D promotes HNSC metastasis through CCL2-mediated recruitment of TAMs.
- KMT2D influences the immune response within the tumor microenvironment.
- KMT2D is a potential therapeutic target for reducing metastasis and immune suppression in HNSC.
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