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DNA damage response-related ncRNAs as regulators of therapy resistance in cancer
Ziru Gao1, Xinchi Luan1, Xuezhe Wang1
1Institute for Translational Medicine, The Affiliated Hospital of Qingdao University, Qingdao Medical College, Qingdao University, Qingdao, China.
Abstract:
The DNA damage repair (DDR) pathway is a complex signaling cascade that can sense DNA damage and trigger cellular responses to DNA damage to maintain genome stability and integrity. A typical hallmark of cancer is genomic instability or nonintegrity, which is closely related to the accumulation of DNA damage within cancer cells. The treatment principles of radiotherapy and chemotherapy for cancer are based on their cytotoxic effects on DNA damage, which are accompanied by severe and unnecessary side effects on normal tissues, including dysregulation of the DDR and induced therapeutic tolerance. As a driving factor for oncogenes or tumor suppressor genes, noncoding RNA (ncRNA) have been shown to play an important role in cancer cell resistance to radiotherapy and chemotherapy. Recently, it has been found that ncRNA can regulate tumor treatment tolerance by altering the DDR induced by radiotherapy or chemotherapy in cancer cells, indicating that ncRNA are potential regulatory factors targeting the DDR to reverse tumor treatment tolerance. This review provides an overview of the basic information and functions of the DDR and ncRNAs in the tolerance or sensitivity of tumors to chemotherapy and radiation therapy. We focused on the impact of ncRNA (mainly microRNA [miRNA], long noncoding RNA [lncRNA], and circular RNA [circRNA]) on cancer treatment by regulating the DDR and the underlying molecular mechanisms of their effects. These findings provide a theoretical basis and new insights for tumor-targeted therapy and the development of novel drugs targeting the DDR or ncRNAs.
Insights
Noncoding RNAs (ncRNAs) can influence cancer treatment outcomes by modulating the DNA damage repair (DDR) pathway, impacting tumor sensitivity or resistance to therapies like chemotherapy and radiotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Genomic instability is a hallmark of cancer, linked to DNA damage accumulation.
- Cancer therapies like radiotherapy and chemotherapy exploit DNA damage but cause side effects and therapeutic tolerance.
- Noncoding RNAs (ncRNAs) are implicated in cancer development and treatment resistance.
Purpose of the Study:
- To review the role of the DNA damage repair (DDR) pathway in cancer treatment sensitivity and tolerance.
- To explore how ncRNAs (miRNA, lncRNA, circRNA) regulate the DDR pathway in cancer.
- To provide insights into targeting DDR and ncRNAs for improved cancer therapies.
Main Methods:
- Literature review of studies on DDR, ncRNAs, and cancer treatment.
- Analysis of molecular mechanisms by which ncRNAs affect DDR.
- Focus on microRNAs, long noncoding RNAs, and circular RNAs.
Main Results:
- ncRNAs significantly influence tumor response to radiotherapy and chemotherapy by altering DDR.
- ncRNAs can either enhance or reduce cancer cell sensitivity to DNA-damaging agents.
- Specific ncRNAs modulate DDR pathways, contributing to therapeutic tolerance or sensitivity.
Conclusions:
- ncRNAs are key regulators of the DDR pathway in cancer.
- Targeting ncRNAs offers a promising strategy to overcome treatment resistance and tolerance.
- Understanding ncRNA-DDR interactions can lead to novel therapeutic approaches for cancer.
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