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Published on: August 5, 2022
Antimetabolites: established cancer therapy
1Department of Oral Pathology & Microbiology, School of Dental Sciences, Sharda University, India. manjultiw@gmail.com
Abstract:
Cell death has been divided into two main types: programmed cell death, in which the cell plays an active role, and passive (necrotic) cell death. Senescence arrest, accelerated senescence and differentiation are also responses that can be induced in response to DNA-damaging agents. Apoptosis may occur as a primary event following chemotherapy, in which genes that regulate apoptosis will influence the outcome of therapy or, alternatively, as an event secondary to the induction of lethal damage that involves the subsequent processing of cellular damage. The particular type of response induced is highly dependent on the agent and dose employed, the type of DNA damage induced as well as the genetic and cellular phenotypes. It has been proposed that apoptosis may play a lesser role in tumor response to radiation in comparison with the induction of cell death through mitotic catastrophe or a senescence-like irreversible growth arrest. However, in comparison with the induction of apoptosis, there is a lack of as much definitive information on other cell death processes that occur in cancer cells in response to chemotherapeutic agents, including antimetabolites. This article reviews what is known about these processes at the present time in response to experimental or clinically used agents that are analogs of 5-fluorouracil, cytidine or purines, hydroxyurea, or that belong to the family of folate antagonists.
Insights
Cancer cells die through programmed cell death (apoptosis) or other mechanisms like mitotic catastrophe. This review focuses on cell death pathways induced by chemotherapy agents, particularly antimetabolites.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Cell death is broadly classified into programmed (apoptosis) and passive (necrosis).
- DNA-damaging agents can induce senescence arrest, accelerated senescence, and differentiation.
- Apoptosis can be a primary or secondary event in chemotherapy, influenced by gene regulation and cellular damage.
Purpose of the Study:
- To review current knowledge on cell death processes in cancer cells induced by chemotherapeutic agents.
- To focus on antimetabolites, including analogs of 5-fluorouracil, cytidine, purines, hydroxyurea, and folate antagonists.
Main Methods:
- Literature review of experimental and clinical data.
- Analysis of cell death pathways in response to specific chemotherapeutic agents.
Main Results:
- Apoptosis plays a role in chemotherapy, but other cell death mechanisms like mitotic catastrophe may be more significant, especially with radiation therapy.
- Information on non-apoptotic cell death pathways induced by chemotherapeutic agents is less definitive compared to apoptosis.
- The type of cell death is dependent on the agent, dose, DNA damage type, and cellular phenotype.
Conclusions:
- Understanding diverse cell death mechanisms is crucial for cancer therapy.
- Further research is needed to fully elucidate non-apoptotic cell death pathways induced by chemotherapeutic agents.
- This review consolidates current understanding of antimetabolite-induced cell death in cancer.
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