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Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Mitochondrial adaptation in cancer drug resistance: prevalence, mechanisms, and management
Ping Jin1, Jingwen Jiang1, Li Zhou1
1State Key Laboratory of Biotherapy and Cancer Center, West China Hospital and West China School of Basic Medical Sciences and Forensic Medicine, Sichuan University and Collaborative Innovation Center for Biotherapy, Chengdu, 610041, People's Republic of China.
Abstract:
Drug resistance represents a major obstacle in cancer management, and the mechanisms underlying stress adaptation of cancer cells in response to therapy-induced hostile environment are largely unknown. As the central organelle for cellular energy supply, mitochondria can rapidly undergo dynamic changes and integrate cellular signaling pathways to provide bioenergetic and biosynthetic flexibility for cancer cells, which contributes to multiple aspects of tumor characteristics, including drug resistance. Therefore, targeting mitochondria for cancer therapy and overcoming drug resistance has attracted increasing attention for various types of cancer. Multiple mitochondrial adaptation processes, including mitochondrial dynamics, mitochondrial metabolism, and mitochondrial apoptotic regulatory machinery, have been demonstrated to be potential targets. However, recent increasing insights into mitochondria have revealed the complexity of mitochondrial structure and functions, the elusive functions of mitochondria in tumor biology, and the targeting inaccessibility of mitochondria, which have posed challenges for the clinical application of mitochondrial-based cancer therapeutic strategies. Therefore, discovery of both novel mitochondria-targeting agents and innovative mitochondria-targeting approaches is urgently required. Here, we review the most recent literature to summarize the molecular mechanisms underlying mitochondrial stress adaptation and their intricate connection with cancer drug resistance. In addition, an overview of the emerging strategies to target mitochondria for effectively overcoming chemoresistance is highlighted, with an emphasis on drug repositioning and mitochondrial drug delivery approaches, which may accelerate the application of mitochondria-targeting compounds for cancer therapy.
Insights
Mitochondria play a key role in cancer drug resistance by adapting to therapy. Targeting mitochondria offers new strategies to overcome this resistance and improve cancer treatment outcomes.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Drug resistance is a major challenge in cancer therapy.
- Cancer cells adapt to hostile environments using mechanisms like mitochondrial stress adaptation.
- Mitochondria are crucial for cellular energy and signaling, influencing tumor characteristics and drug resistance.
Purpose of the Study:
- To review molecular mechanisms of mitochondrial stress adaptation in cancer.
- To explore the connection between mitochondrial adaptation and cancer drug resistance.
- To highlight emerging strategies for targeting mitochondria to overcome chemoresistance.
Main Methods:
- Literature review of recent studies on mitochondrial stress adaptation and cancer drug resistance.
- Analysis of molecular mechanisms involved in mitochondrial dynamics, metabolism, and apoptosis regulation.
- Overview of novel mitochondria-targeting agents and approaches, including drug repositioning and delivery systems.
Main Results:
- Mitochondrial adaptation processes (dynamics, metabolism, apoptosis) are intricately linked to cancer drug resistance.
- Complexity of mitochondrial functions and targeting inaccessibility pose challenges for clinical applications.
- Emerging strategies show promise for overcoming chemoresistance by targeting mitochondria.
Conclusions:
- Understanding mitochondrial stress adaptation is crucial for developing effective cancer therapies.
- Novel mitochondria-targeting agents and innovative delivery approaches are urgently needed.
- Drug repositioning and advanced delivery systems may accelerate clinical application of mitochondria-targeting compounds.
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