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Preferential targeting of apoptosis in tumor versus normal cells
Barbara A Woynarowska1, Jan M Woynarowski
1Department of Radiation Oncology, The University of Texas Health Science Center, 14960 Omicron Drive, San Antonio, TX 78245, USA. bwoynar@saci.org
Abstract:
Elimination of cancer cells by early apoptosis is preferred over other forms of cell growth inhibition. Apoptosis directly leads to tumor regression and reduces risks of selecting more aggressive and/or drug-resistant phenotypes that are often responsible for tumor regrowth and treatment failure. Although DNA damage by anticancer drugs is commonly recognized as an apoptotic stimulus, there is enormous variability in the magnitude and timing of such effects. Especially potent and rapid apoptosis seems to be a hallmark of various alkylating anticancer drugs that are regarded as DNA-reactive agents but are observed to react mainly with cellular proteins. Our studies with such dual-action drugs (irofulven, oxaliplatin) suggest that not only DNA damage, but also protein damage, contributes to apoptosis induction. DNA damage is well known to initiate death-signaling pathways leading to mitochondrial dysfunction. Protein damage, in turn, can distort cell redox homeostasis, which facilitates apoptosis execution. Such dual effects can be particularly lethal to tumor cells, which tend to function under pro-oxidative conditions. In contrast to tumor cells that are highly susceptible, normal cells show marginal apoptotic responses to the dual action drugs. This protection of normal cells might reflect their greater ability to buffer pro-oxidative changes and quickly restore redox homeostasis, despite substantial drug uptake and macromolecular binding. Importantly, by targeting the death process at multiple points, DNA- and protein-damaging drugs can be less vulnerable to various bypass mechanisms possible with single targets. The reviewed studies provide a proof of concept that differential apoptosis targeting in cancer versus normal cells can be a basis for tumor selectivity of anticancer drugs.
Insights
Early apoptosis eliminates cancer cells, preventing drug resistance. Dual-action anticancer drugs, damaging both DNA and proteins, induce potent apoptosis preferentially in tumor cells, sparing normal cells.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Apoptosis is crucial for cancer cell elimination, preventing drug resistance and tumor recurrence.
- Anticancer drugs primarily induce apoptosis via DNA damage, but effects vary significantly.
- Alkylating agents, though DNA-reactive, also damage cellular proteins, influencing apoptosis.
Purpose of the Study:
- To investigate the role of dual DNA and protein damage in apoptosis induction by anticancer drugs.
- To explore the differential effects of these drugs on cancer versus normal cells.
- To establish a proof of concept for tumor selectivity based on differential apoptosis targeting.
Main Methods:
- Studied dual-action drugs like irofulven and oxaliplatin.
- Assessed both DNA damage and protein damage contributions to apoptosis.
- Compared apoptotic responses in tumor cells versus normal cells.
Main Results:
- Dual-action drugs induce potent and rapid apoptosis through both DNA and protein damage.
- Tumor cells, often pro-oxidative, are highly susceptible to these dual effects.
- Normal cells exhibit reduced apoptotic responses, likely due to superior redox homeostasis maintenance.
Conclusions:
- Targeting both DNA and protein damage offers a potent strategy for cancer therapy.
- Differential apoptosis induction in cancer cells versus normal cells can enhance drug selectivity.
- This multi-target approach may overcome drug resistance mechanisms common in cancer treatment.