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Updated: Jun 2, 2026

Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Targeting mitochondria as a therapeutic target in cancer
1Department of Molecular and Cellular Biology, Roswell Park Cancer Institute, Buffalo, New York 14263, USA. charles.wenner@roswellpark.org
Abstract:
Knowledge of re-programming in cancer cells with metabolic differences from their normal counterparts has resulted in new examination of therapeutic approaches. Several studies of the role of tumor mitochondria in cancer have led to the development of non-genotoxic therapies which target mitochondrial proteins, function. The now well-established functions of mitochondria in apoptosis provide novel targets for tumor cell suicide. Mitochondria serve as a central hub for responses to cellular stress as well as injury. The alterations in cancer cells which result in protection from apoptosis can be targeted to inhibit proliferation. Because of the reprogramming of cancer cell metabolism involving increased glycolysis, it appears that blocking InsP(3)R Ca(2+) release or adaptive pathways in response to hypoxia by targeting HIF-1 or metabolic enzymes encoded by the HIF-1 gene represents a feasible therapeutic approach to cancer. A very early in vitro event found in tumor cells following resveratrol addition is an increase in intracellular Ca(2+), measurable within seconds. Ca(2+) release is also observed with non-toxic flavonoids and a goal to identify the sentinel targets of resveratrol as a model compound involved in calcium activation seems worthwhile. New findings of the relationship between autophagy and apoptosis are discussed. The contribution of reactive oxygen species (ROS) generated by mitochondria is also considered. New data as to how cyclophilins and VDAC are involved in mitochondrial hexokinase protection of factors that induce apoptosis are reviewed. In addition, chemotherapeutic approaches based on Akt-activated mTORC1 are described, and their relationship to the role of aerobic glycolysis in this protection.
Insights
Targeting cancer cell mitochondria offers new therapeutic strategies. Blocking calcium release or hypoxia pathways, like HIF-1, can inhibit proliferation and induce tumor cell suicide via apoptosis.
Area of Science:
- Mitochondrial biology and cancer metabolism.
- Cellular stress responses and apoptosis.
- Novel therapeutic targets in oncology.
Background:
- Cancer cells exhibit metabolic reprogramming, differing from normal cells.
- Mitochondria play crucial roles in apoptosis and cellular stress responses.
- Altered apoptosis pathways in cancer cells contribute to proliferation.
Purpose of the Study:
- To explore novel therapeutic approaches targeting cancer cell metabolism and mitochondria.
- To investigate the role of calcium signaling and hypoxia-inducible factor 1 (HIF-1) in cancer.
- To review the interplay between autophagy, apoptosis, and reactive oxygen species (ROS) in cancer.
Main Methods:
- Review of existing studies on tumor mitochondria and non-genotoxic therapies.
- Examination of intracellular calcium (Ca2+) dynamics following resveratrol and flavonoid treatment.
- Analysis of data concerning cyclophilins, VDAC, hexokinase, Akt-activated mTORC1, and aerobic glycolysis.
Main Results:
- Mitochondrial proteins and functions are viable targets for non-genotoxic cancer therapies.
- Blocking InsP(3)R Ca2+ release or HIF-1 pathways presents a feasible therapeutic strategy.
- Resveratrol induces rapid intracellular Ca2+ increase in tumor cells, suggesting calcium signaling as a target.
Conclusions:
- Targeting mitochondrial function, calcium signaling, and metabolic pathways like glycolysis offers promising avenues for cancer treatment.
- Understanding the complex interactions between autophagy, apoptosis, ROS, and specific proteins (cyclophilins, VDAC) is key.
- Non-genotoxic therapies focusing on these mechanisms hold potential for inhibiting cancer proliferation and inducing cell death.
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