Dual-Targeted Therapy Circumvents Non-Genetic Drug Resistance to Targeted Therapy
Wei Wang1, Yue Sun1, Xiaobo Liu1
1Laboratory of Cancer Precision Medicine, The First Hospital of Jilin University, Changchun, China.
Abstract:
The introduction of various targeted agents into the armamentarium of cancer treatment has revolutionized the standard care of patients with cancer. However, like conventional chemotherapy, drug resistance, either preexisting (primary or intrinsic resistance) or developed following treatment (secondary or acquired resistance), remains the Achilles heel of all targeted agents with no exception, via either genetic or non-genetic mechanisms. In the latter, emerging evidence supports the notion that intracellular signaling pathways for tumor cell survival act as a mutually interdependent network via extensive cross-talks and feedback loops. Thus, dysregulations of multiple signaling pathways usually join forces to drive oncogenesis, tumor progression, invasion, metastasis, and drug resistance, thereby providing a basis for so-called "bypass" mechanisms underlying non-genetic resistance in response to targeted agents. In this context, simultaneous interruption of two or more related targets or pathways (an approach called dual-targeted therapy, DTT), via either linear or parallel inhibition, is required to deal with such a form of drug resistance to targeted agents that specifically inhibit a single oncoprotein or oncogenic pathway. Together, while most types of tumor cells are often addicted to two or more targets or pathways or can switch their dependency between them, DTT targeting either intrinsically activated or drug-induced compensatory targets/pathways would efficiently overcome drug resistance caused by non-genetic events, with a great opportunity that those resistant cells might be particularly more vulnerable. In this review article, we discuss, with our experience, diverse mechanisms for non-genetic resistance to targeted agents and the rationales to circumvent them in the treatment of cancer, emphasizing hematologic malignancies.
Insights
Drug resistance in cancer targeted therapy is a major challenge. Dual-targeted therapy (DTT) can overcome non-genetic resistance by inhibiting multiple pathways simultaneously, especially in hematologic malignancies.
Area of Science:
- Oncology
- Cancer Therapeutics
- Molecular Biology
Background:
- Targeted agents have revolutionized cancer care but face drug resistance.
- Non-genetic resistance mechanisms involve complex intracellular signaling networks.
- Dysregulation of multiple pathways drives cancer progression and resistance.
Purpose of the Study:
- To review mechanisms of non-genetic resistance to targeted cancer agents.
- To discuss rationales for circumventing resistance using dual-targeted therapy (DTT).
- To emphasize the application of DTT in hematologic malignancies.
Main Methods:
- Review of existing literature on targeted therapy and drug resistance.
- Analysis of intracellular signaling pathways and their cross-talk.
- Discussion of dual-targeted therapy (DTT) strategies.
Main Results:
- Non-genetic resistance arises from interconnected signaling pathways.
- Dual-targeted therapy (DTT) can overcome resistance by inhibiting multiple targets.
- Resistant cells may become more vulnerable to DTT.
Conclusions:
- Non-genetic resistance is a significant hurdle in targeted cancer therapy.
- DTT offers a promising strategy to overcome resistance, particularly in hematologic cancers.
- Understanding pathway dependencies is crucial for effective DTT development.
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