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Updated: Aug 30, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Alterations in the apoptotic machinery and their potential role in anticancer drug resistance
Scott H Kaufmann1, David L Vaux
1Division of Oncology Research, Guggenheim 1342C, Mayo Clinic, 200 First Street SW, Rochester, MN 55905, USA. Kaufmann.Scott@Mayo.edu
Abstract:
Anticancer drugs can potentially kill cells in two fundamentally different ways, by interfering with cellular processes that are essential for maintenance of viability or by triggering an endogenous physiological cell death mechanism. Apoptosis is a form of physiological cell death mediated by caspases, a unique family of intracellular cysteine proteases. Zymogen forms of these proteases are found in virtually all somatic cells, but remain latent until their activation is induced by ligation of specific cell surface receptors (the so-called "death receptors"), by mitochondrial alterations that allow release of cytochrome c and other intermembrane components, or possibly by other mechanisms. Most anticancer drugs activate the mitochondrial pathway. This apoptotic pathway is regulated by pro- and antiapoptotic members of the Bcl-2 family of proteins. Once activated, certain caspases might also be controlled by the inhibitor of apoptosis (IAP) proteins. Alterations in apoptotic pathway components or their regulators have been detected in a variety of cancers, suggesting that loss of the ability of cells to undergo apoptosis might contribute to carcinogenesis. Because cancer therapies such as radiation, glucocorticoids, and chemotherapeutic drugs exert their beneficial effects, at least in part, by inducing apoptosis of cancer cells, the same alterations in apoptotic pathways would be predicted to contribute to resistance. A key issue is whether the direct toxic activity of these treatments is of benefit when neoplastic cells contain changes that diminish their ability to undergo apoptosis.
Insights
Anticancer drugs induce cell death via essential process interference or apoptosis. Cancer cells with impaired apoptosis pathways may resist these treatments, impacting therapeutic effectiveness.
Area of Science:
- Cell Biology
- Cancer Biology
- Biochemistry
Background:
- Anticancer drugs induce cell death through essential process disruption or programmed cell death (apoptosis).
- Apoptosis is a caspase-mediated physiological cell death mechanism initiated by death receptors or mitochondrial pathways.
- The Bcl-2 protein family regulates apoptosis, while inhibitor of apoptosis (IAP) proteins can control caspases.
Purpose of the Study:
- To explore the mechanisms of anticancer drug-induced cell death.
- To investigate the role of apoptosis and its regulators in cancer development and drug resistance.
- To assess the efficacy of anticancer therapies in the context of altered apoptotic pathways in cancer cells.
Main Methods:
- Review of cellular mechanisms of drug-induced cytotoxicity.
- Analysis of the apoptotic pathway, including death receptors, mitochondrial pathways, Bcl-2 family, and IAPs.
- Examination of alterations in apoptosis components in various cancers and their implications for drug resistance.
Main Results:
- Most anticancer drugs activate the mitochondrial apoptotic pathway.
- Dysregulation of apoptosis components is observed in cancers, potentially contributing to carcinogenesis.
- Altered apoptotic pathways in cancer cells may lead to resistance against therapies like radiation and chemotherapy.
Conclusions:
- Loss of apoptotic capacity in cancer cells can contribute to disease progression.
- Therapeutic resistance is predicted in cancers with diminished apoptotic function.
- The clinical benefit of direct cytotoxic drug activity is questionable when cancer cells have impaired apoptosis.
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