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Updated: Jul 23, 2025

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Therapeutic Targeting of Mitochondrial Plasticity and Redox Control to Overcome Cancer Chemoresistance
Shalini Mani1, Stephen J Ralph2, Geeta Swargiary1
1Centre for Emerging Diseases, Department of Biotechnology, Jaypee Institute of Information Technology, Noida, India.
Abstract:
Mitochondria are subcellular organelles performing essential metabolic functions contributing to cellular bioenergetics and regulation of cell growth or death. The basic mitochondrial function in fulfilling the need for cell growth and vitality is evidenced whereby cancer cells with depleted mitochondrial DNA (rho zero, p0 cells) no longer form tumors until newly recruited mitochondria are internalized into the rho zero cells. Herein lies the absolute dependency on mitochondria for tumor growth. Hence, mitochondria are key regulators of cell death (by apoptosis, necroptosis, or other forms of cell death) and are, therefore, important targets for anticancer therapy. Mitochondrial plasticity regulating their state of fusion or fission is key to the chemoresistance properties of cancer cells by promoting pro-survival pathways, enabling the mitochondria to mitigate against the cellular stresses and extreme conditions within the tumor microenvironment caused by chemotherapy, hypoxia, or oxidative stress. This review discusses many characteristics of mitochondria, the processes and pathways controlling the dynamic changes occurring in the morphology of mitochondria, the roles of reactive oxygen species, and their relationship with mitochondrial fission or fusion. It also examines the relationship of redox to mitophagy when mitochondria become compromised and its effect on cancer cell survival, stemness, and the changes accompanying malignant progression from primary tumors to metastatic disease. A challenging question that arises is whether the changes in mitochondrial dynamics and their regulation can provide opportunities for improving drug targeting during cancer treatment and enhancing survival outcomes. Antioxid. Redox Signal. 39, 591-619.
Insights
Mitochondria are essential for cancer cell growth and survival, making them crucial targets for anticancer therapies. Understanding mitochondrial dynamics and their role in chemoresistance may improve cancer drug targeting and patient outcomes.
Area of Science:
- Cell Biology
- Cancer Research
- Mitochondrial Biology
Background:
- Mitochondria are vital for cellular energy and regulate cell death pathways.
- Cancer cells exhibit an absolute dependency on mitochondria for tumor growth and survival.
- Mitochondrial plasticity, involving fusion and fission, contributes to cancer cell chemoresistance.
Purpose of the Study:
- To review mitochondrial characteristics and their dynamic morphological changes.
- To explore the roles of reactive oxygen species and redox in mitochondrial function and cancer.
- To examine the link between mitochondrial dynamics, mitophagy, and cancer progression.
Main Methods:
- Literature review of mitochondrial biology in cancer.
- Analysis of mitochondrial dynamics (fission/fusion) and their impact on cancer.
- Investigation of reactive oxygen species, redox, and mitophagy in cancer cell survival.
Main Results:
- Mitochondria are indispensable for tumor growth, as evidenced by rho zero cells.
- Mitochondrial plasticity aids cancer cells in surviving chemotherapy and tumor microenvironment stresses.
- Redox balance and mitophagy are critical for cancer cell stemness and metastasis.
Conclusions:
- Mitochondria are key regulators of cell death and important targets for anticancer therapy.
- Mitochondrial dynamics play a significant role in cancer cell chemoresistance.
- Targeting mitochondrial dynamics presents a potential strategy for enhancing cancer treatment efficacy.
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