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Updated: Feb 16, 2026

Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
Domesticating Cancer: An Evolutionary Strategy in the War on Cancer
Gustav van Niekerk1, Theo Nell1, Anna-Mart Engelbrecht1
1Department of Physiological Sciences, Stellenbosch University, Stellenbosch, South Africa.
Abstract:
Since cancer shares the same molecular machinery as the host, most therapeutic interventions that aim to target cancer would inadvertently also adversely affect the host. In addition, cancer continuously evolves, streamlining its host-derived genome for a new single-celled existence. In particular, short-term clinical success observed with most antineoplastic therapies directly relate to the fact that cancer is constantly evolving. However, the clonal evolution of cancer occasionally also render cancer cells uniquely susceptible to therapeutic interventions, as is exemplified by the clinical relevance of synthetic lethality. Synthetic lethality describes a situation where the simultaneous loss of function in two genes results in lethality, but where a loss of function in either single gene is tolerated. This observation suggests that the evolution of cancer, usually seen as a major clinical challenge, may also afford a key opportunity in lowering on-target toxicities accosted with chemotherapy. As an example, by subjecting cancer to specific selection regimes, cancer can in effect be placed on evolutionary trajectories leading to the development of "targetable" phenotypes such as synthetic lethal interactions. However, such a selection regime would have to overcome a range of obstacles such as on-target toxicity and the selection of an evolvable trait. Since the majority of cancer evolution manifests as a loss of function, we suggest that the induction of auxotrophic phenotypes (i.e., where an organism lose the ability to synthesize specific organic compounds required for growth and thus become dependent on it from dietary sources) may represent an attractive therapeutic option. As an example, animals can obtain vitamin C either by de novo synthesis or from their diet. However, since the maintenance of synthetic pathways is costly, such pathways are often lost if no longer necessary, resulting in the organism being auxotrophic toward the dietary compound. Similarly, increasing the maintenance cost of a redundant pathway in cancer cells is likely to select for clones that have lost such a redundant pathway. Inhibition of a pathway, while supporting the activity of a compensating pathway, may thus induce auxotrophism in cancer cells but not in genomic stable host cells.
Insights
Cancer evolution can be exploited to create synthetic lethality, making cancer cells dependent on external nutrients. This strategy aims to reduce chemotherapy
Area of Science:
- Oncology
- Molecular Biology
- Evolutionary Biology
Background:
- Cancer shares molecular machinery with the host, leading to toxicity from conventional therapies.
- Cancer's continuous evolution presents challenges but also creates unique vulnerabilities.
- Synthetic lethality, where loss of two genes causes cell death, offers therapeutic potential.
Purpose of the Study:
- To explore how cancer's evolution can be leveraged to develop targeted therapies.
- To investigate the induction of auxotrophic phenotypes in cancer cells as a therapeutic strategy.
- To reduce on-target toxicities associated with chemotherapy.
Main Methods:
- Analyzing cancer's evolutionary trajectories to identify targetable phenotypes.
- Inducing auxotrophy by increasing the cost of maintaining redundant pathways in cancer cells.
- Inhibiting specific pathways to select for clones that have lost them.
Main Results:
- Cancer evolution can lead to synthetic lethal interactions.
- Inducing auxotrophy may create cancer-specific dependencies.
- Targeting redundant pathways can select for cancer cells with specific metabolic vulnerabilities.
Conclusions:
- Cancer's evolution, while a challenge, offers opportunities for novel therapeutic strategies.
- Inducing auxotrophy represents a promising approach to lower chemotherapy-related toxicities.
- Targeting cancer's metabolic dependencies can lead to more selective and effective treatments.
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