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Published on: June 9, 2023
KDM4 Involvement in Breast Cancer and Possible Therapeutic Approaches
Benluvankar Varghese1, Nunzio Del Gaudio1, Gilda Cobellis1
1Department of Precision Medicine, University of Campania Luigi Vanvitelli, Napoli, Italy.
Abstract:
Breast cancer (BC) is the second leading cause of cancer death in women, although recent scientific and technological achievements have led to significant improvements in progression-free disease and overall survival of patients. Genetic mutations and epigenetic modifications play a critical role in deregulating gene expression, leading to uncontrolled cell proliferation and cancer progression. Aberrant histone modifications are one of the most frequent epigenetic mechanisms occurring in cancer. In particular, methylation and demethylation of specific lysine residues alter gene accessibility via histone lysine methyltransferases (KMTs) and histone lysine demethylases (KDMs). The KDM family includes more than 30 members, grouped into six subfamilies and two classes based on their sequency homology and catalytic mechanisms, respectively. Specifically, the KDM4 gene family comprises six members, KDM4A-F, which are associated with oncogene activation, tumor suppressor silencing, alteration of hormone receptor downstream signaling, and chromosomal instability. Blocking the activity of KDM4 enzymes renders them "druggable" targets with therapeutic effects. Several KDM4 inhibitors have already been identified as anticancer drugs in vitro in BC cells. However, no KDM4 inhibitors have as yet entered clinical trials due to a number of issues, including structural similarities between KDM4 members and conservation of the active domain, which makes the discovery of selective inhibitors challenging. Here, we summarize our current knowledge of the molecular functions of KDM4 members in BC, describe currently available KDM4 inhibitors, and discuss their potential use in BC therapy.
Insights
Histone lysine demethylases (KDMs), particularly the KDM4 family, are key epigenetic regulators in breast cancer (BC). Targeting KDM4 enzymes offers therapeutic potential, but developing selective inhibitors remains challenging.
Area of Science:
- Epigenetics
- Molecular Oncology
Background:
- Breast cancer (BC) remains a leading cause of cancer death in women, with genetic and epigenetic factors driving disease progression.
- Aberrant histone modifications, specifically methylation and demethylation mediated by histone lysine methyltransferases (KMTs) and histone lysine demethylases (KDMs), are crucial in cancer development.
- The KDM4 gene family (KDM4A-F) plays significant roles in BC by influencing oncogene activation, tumor suppressor silencing, hormone receptor signaling, and chromosomal instability.
Purpose of the Study:
- To review the molecular functions of KDM4 members in breast cancer.
- To summarize existing KDM4 inhibitors.
- To discuss the therapeutic potential of KDM4 inhibitors in BC treatment.
Main Methods:
- Literature review of KDM4 functions in BC.
- Compilation of identified KDM4 inhibitors.
- Analysis of challenges and opportunities for KDM4 inhibitor development in BC therapy.
Main Results:
- KDM4 enzymes are implicated in key oncogenic pathways in BC.
- Several KDM4 inhibitors have demonstrated anticancer activity in vitro.
- Structural similarities among KDM4 members and conserved active domains pose challenges for selective inhibitor design.
Conclusions:
- KDM4 enzymes represent druggable targets for breast cancer therapy.
- Further research is needed to overcome challenges in developing selective KDM4 inhibitors for clinical application.
- Targeting KDM4 may offer a novel therapeutic strategy for breast cancer patients.
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