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Mitochondria-targeted plastoquinone derivatives as tools to interrupt execution of the aging program. 3. Inhibitory
L S Agapova1, B V Chernyak, L V Domnina
1Blokhin Russian Cancer Research Center, Russian Academy of Medical Sciences, Moscow, Russia.
Abstract:
It was proposed that increased level of mitochondrial reactive oxygen species (ROS), mediating execution of the aging program of an organism, could also be critical for neoplastic transformation and tumorigenesis. This proposal was addressed using new mitochondria-targeted antioxidant SkQ1 (10-(6'-plastoquinonyl) decyltriphenylphosphonium) that scavenges ROS in mitochondria at nanomolar concentrations. We found that diet supplementation with SkQ1 (5 nmol/kg per day) suppressed spontaneous development of tumors (predominantly lymphomas) in p53(-/-) mice. The same dose of SkQ1 inhibited the growth of human colon carcinoma HCT116/p53(-/-) xenografts in athymic mice. Growth of tumor xenografts of human HPV-16-associated cervical carcinoma SiHa was affected by SkQ1 only slightly, but survival of tumor-bearing animals was increased. It was also shown that SkQ1 inhibited the tumor cell proliferation, which was demonstrated for HCT116 p53(-/-) and SiHa cells in culture. Moreover, SkQ1 induced differentiation of various tumor cells in vitro. Coordinated SkQ1-initiated changes in cell shape, cytoskeleton organization, and E-cadherin-positive intercellular contacts were observed in epithelial tumor cells. In Ras- and SV40-transformed fibroblasts, SkQ1 was found to initiate reversal of morphological transformation of a malignant type, restoring actin stress fibers and focal adhesion contacts. SkQ1 suppressed angiogenesis in Matrigel implants, indicating that mitochondrial ROS could be important for tumor angiogenesis. This effect, however, was less pronounced in HCT116/p53(-/-) tumor xenografts. We have also shown that SkQ1 and related positively charged antioxidants are substrates of the P-glycoprotein multidrug resistance pump. The lower anti-tumor effect and decreased intracellular accumulation of SkQ1, found in the case of HCT116 xenografts bearing mutant forms of p53, could be related to a higher level of P-glycoprotein. The effects of traditional antioxidant N-acetyl-L-cysteine (NAC) on tumor growth and tumor cell phenotype were similar to the effects of SkQ1 but more than 1,000,000 times higher doses of NAC than those of SkQ1 were required. Extremely high efficiency of SkQ1, related to its accumulation in the mitochondrial membrane, indicates that mitochondrial ROS production is critical for tumorigenesis at least in some animal models.
Insights
Mitochondria-targeted antioxidant SkQ1 significantly suppressed tumor development and growth in mouse models by scavenging reactive oxygen species (ROS). This highlights the critical role of mitochondrial ROS in tumorigenesis and offers a potent therapeutic strategy.
Area of Science:
- Biochemistry
- Oncology
- Mitochondrial Biology
Background:
- Increased mitochondrial reactive oxygen species (ROS) levels are implicated in aging and potentially in cancer development.
- Targeting mitochondrial ROS is a potential strategy for cancer prevention and treatment.
Purpose of the Study:
- To investigate the role of mitochondrial ROS in tumorigenesis using the mitochondria-targeted antioxidant SkQ1.
- To evaluate the efficacy of SkQ1 in suppressing tumor development and growth in preclinical models.
Main Methods:
- Dietary supplementation with SkQ1 in p53(-/-) mice to assess spontaneous tumor development.
- Administration of SkQ1 to inhibit human colon carcinoma (HCT116/p53(-/-)) and cervical carcinoma (SiHa) xenografts in mice.
- In vitro studies on tumor cell proliferation, differentiation, and morphological transformation using SkQ1.
Main Results:
- SkQ1 suppressed spontaneous tumor formation in p53(-/-) mice and inhibited the growth of HCT116/p53(-/-) xenografts.
- SkQ1 demonstrated anti-proliferative and differentiation-inducing effects on tumor cells in vitro, and reversed malignant transformation in fibroblasts.
- SkQ1 suppressed angiogenesis and showed high efficiency due to mitochondrial accumulation, outperforming N-acetyl-L-cysteine (NAC) significantly.
Conclusions:
- Mitochondrial ROS play a critical role in tumorigenesis, at least in certain models.
- SkQ1 is a highly efficient mitochondria-targeted antioxidant with significant anti-tumor effects.
- SkQ1 represents a promising therapeutic agent for targeting ROS-driven cancers.
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