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Updated: May 29, 2026

Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Mitochondrially targeted α-tocopheryl succinate is antiangiogenic: potential benefit against tumor angiogenesis but
Jakub Rohlena1, Lan-Feng Dong, Katarina Kluckova
1Institute of Biotechnology, Academy of Sciences of the Czech Republic, Prague, Czech Republic. jakub.rohlena@img.cas.cz
Aims:
A plausible strategy to reduce tumor progress is the inhibition of angiogenesis. Therefore, agents that efficiently suppress angiogenesis can be used for tumor suppression. We tested the antiangiogenic potential of a mitochondrially targeted analog of α-tocopheryl succinate (MitoVES), a compound with high propensity to induce apoptosis.
Results:
MitoVES was found to efficiently kill proliferating endothelial cells (ECs) but not contact-arrested ECs or ECs deficient in mitochondrial DNA, and suppressed angiogenesis in vitro by inducing accumulation of reactive oxygen species and induction of apoptosis in proliferating/angiogenic ECs. Resistance of arrested ECs was ascribed, at least in part, to the lower mitochondrial inner transmembrane potential compared with the proliferating ECs, thus resulting in the lower level of mitochondrial uptake of MitoVES. Shorter-chain homologs of MitoVES were less efficient in angiogenesis inhibition, thus suggesting a molecular mechanism of its activity. Finally, MitoVES was found to suppress HER2-positive breast carcinomas in a transgenic mouse as well as inhibit tumor angiogenesis. The antiangiogenic efficacy of MitoVES was corroborated by its inhibitory activity on wound healing in vivo.
Innovation And Conclusion:
We conclude that MitoVES, a mitochondrially targeted analog of α-tocopheryl succinate, is an efficient antiangiogenic agent of potential clinical relevance, exerting considerably higher activity than its untargeted counterpart. MitoVES may be helpful against cancer but may compromise wound healing.
Insights
Mitochondrially targeted α-tocopheryl succinate (MitoVES) effectively inhibits angiogenesis and suppresses HER2-positive breast cancer in mice. This compound shows potential for cancer therapy but may impair wound healing.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Tumor growth is dependent on angiogenesis.
- Inhibiting angiogenesis is a key strategy for cancer suppression.
- Mitochondrially targeted compounds offer novel therapeutic approaches.
Purpose of the Study:
- To evaluate the antiangiogenic potential of MitoVES, a mitochondrially targeted analog of α-tocopheryl succinate.
- To investigate the mechanism of action of MitoVES in endothelial cells.
- To assess the efficacy of MitoVES in preclinical cancer models.
Main Methods:
- In vitro studies on endothelial cells (ECs) proliferation, apoptosis, and angiogenesis.
- Assessment of mitochondrial uptake and reactive oxygen species (ROS) generation.
- In vivo studies using a HER2-positive breast carcinoma mouse model and wound healing assays.
Main Results:
- MitoVES selectively killed proliferating ECs by inducing apoptosis via ROS accumulation.
- Angiogenesis inhibition was linked to mitochondrial uptake, which was lower in arrested ECs.
- MitoVES suppressed tumor growth and angiogenesis in a HER2-positive breast cancer model and inhibited wound healing.
- MitoVES demonstrated higher efficacy than its untargeted counterpart.
Conclusions:
- MitoVES is a potent antiangiogenic agent with significant preclinical efficacy against HER2-positive breast cancer.
- Its mechanism involves targeted induction of apoptosis in proliferating endothelial cells.
- MitoVES holds clinical relevance for cancer treatment but requires careful consideration regarding wound healing side effects.
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