Related Experiment Video
Updated: Feb 12, 2026

Mitochondrial Respiration Quantification in Yeast Whole Cells
Published on: November 8, 2024
Targeting mitochondrial respiration as a therapeutic strategy for cervical cancer
Shenglan Tian1, Heng Chen2, Wei Tan3
1Department of Anesthesia and Pain Management, Wuhan University of Science and Technology Hospital, Wuhan, Hubei, PR China.
Abstract:
Targeting mitochondrial respiration has been documented as an effective therapeutic strategy in cancer. However, the impact of mitochondrial respiration inhibition on cervical cancer cells are not well elucidated. Using a panel of cervical cancer cell lines, we show that an existing drug atovaquone is active against the cervical cancer cells with high profiling of mitochondrial biogenesis. Atovaquone inhibited proliferation and induced apoptosis with varying efficacy among cervical cancer cell lines regardless of HPV infection, cellular origin and their sensitivity to paclitaxel. We further demonstrated that atovaquone acts on cervical cancer cells via inhibiting mitochondrial respiration. In particular, atovaquone specifically inhibited mitochondrial complex III but not I, II or IV activity, leading to respiration inhibition and energy crisis. Importantly, we found that the different sensitivity of cervical cancer cell lines to atovaquone were due to their differential level of mitochondrial biogenesis and dependency to mitochondrial respiration. In addition, we demonstrated that the in vitro observations were translatable to in vivo cervical cancer xenograft mouse model. Our findings suggest that the mitochondrial biogenesis varies among patients with cervical cancer. Our work also suggests that atovaquone is a useful addition to cervical cancer treatment, particularly to those with high dependency on mitochondrial respiration.
Insights
Atovaquone effectively targets cervical cancer cells by inhibiting mitochondrial respiration, specifically complex III. Its efficacy varies based on mitochondrial biogenesis and respiration dependency, showing promise for cancer treatment.
Area of Science:
- Biochemistry
- Oncology
- Cell Biology
Background:
- Targeting mitochondrial respiration is a validated cancer therapy.
- The effects of mitochondrial respiration inhibition on cervical cancer remain unclear.
Purpose of the Study:
- To investigate the efficacy of atovaquone in cervical cancer cells.
- To elucidate the mechanism of atovaquone's action and identify factors influencing sensitivity.
Main Methods:
- Utilized a panel of cervical cancer cell lines.
- Assessed atovaquone's impact on proliferation, apoptosis, and mitochondrial respiration.
- Measured mitochondrial complex activities (I, II, III, IV).
- Evaluated drug efficacy in a cervical cancer xenograft mouse model.
Main Results:
- Atovaquone inhibited proliferation and induced apoptosis in cervical cancer cells.
- The drug specifically inhibited mitochondrial complex III, leading to energy crisis.
- Sensitivity to atovaquone correlated with mitochondrial biogenesis and respiration dependency.
- In vitro findings were validated in an in vivo mouse model.
Conclusions:
- Cervical cancer cell sensitivity to atovaquone is linked to mitochondrial respiration dependency.
- Atovaquone demonstrates potential as a therapeutic agent for cervical cancer.
- Mitochondrial biogenesis levels vary among cervical cancer patients, suggesting personalized treatment approaches.
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against...
Respiration
Energy production in the human body is primarily fueled by oxidation, a process where food molecules are burned by combining with oxygen to produce carbon dioxide and water. This vital metabolic process sustains life, and is supported intricately by the respiratory system.
Structure and Function of the Respiratory System:
The respiratory system is a complex network of structures that includes the nose, oropharynx, larynx, trachea,...
Animal Mitochondrial Genetics
Export of Mitochondrial and Chloroplast Genes
Respiration Pathways
Alterations in Respiration II
In Biot's breathing, the respiratory rate and depth are irregular, alternating between periods of deep gasping and apnea. Common causes...

