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Selenium Nanoparticles Show Anticancer Activity Through Regulation of HIF-1α and HIF-2α Under Hypoxic Condition in
Sancharan Acharya1, Subramaniyam Nithyananthan1, Chinnasamy Thirunavukkarasu1
1Department of Biochemistry and Molecular Biology, Pondicherry University, Puducherry, India.
Abstract:
Tumor microenvironment has significant influence in therapeutic response and clinical outcome. Combination therapy is more effective in cancer treatment compared with monotherapy. Any chemical or drug that targets tumor microenvironment pathway, will be a boon to combination cancer chemotherapy. Combination therapy through micronutrient may have added advantage in clinical applications. Selenium (Se) is an essential micronutrient; Se in the form of Se nanoparticles (SeNPs) show efficient anticancer properties and may have the potential to target tumor niche such as hypoxic environment. The aim of this study was to find out the anticancer effect of SeNPs on cell line HepG2 under hypoxic condition and also to evaluate their effect on the translocation of hypoxia-inducible factors (HIFs) from cytoplasm to nucleus that help the cells to survive under hypoxic condition. It was found that the SeNPs induce HepG2 cell death in normoxic and hypoxic conditions, however, hypoxic condition showed higher LD50. SeNP concentration is directly proportional to cell death in both the conditions. Furthermore, intracellular accumulation of Se is not affected by hypoxia. SeNP-induced HepG2 cell death is due to increased DNA damage, nuclear condensation, and mitochondrial membrane potential disturbance. Furthermore, SeNPs were also found to decrease the translocation of HIFs from cytosol to the nucleus. After analyzing the results, it is concluded that SeNP treatment disturbs tumor niche through the inhibition of HIFs' translocation from cytosol to nucleus. SeNPs in synergy with primary drug, such as doxorubicin (DOX), may enhance the anticancer efficacy of DOX through regulation of HIFs, warranting further research.
Insights
Selenium nanoparticles (SeNPs) effectively induce cancer cell death by damaging DNA and inhibiting hypoxia-inducible factors (HIFs) translocation. This suggests SeNPs can disrupt the tumor microenvironment, enhancing combination cancer chemotherapy.
Area of Science:
- Nanotechnology
- Cancer Biology
- Biochemistry
Background:
- The tumor microenvironment significantly impacts cancer treatment efficacy.
- Combination therapy, particularly involving micronutrients, shows promise over monotherapy.
- Selenium nanoparticles (SeNPs) exhibit anticancer properties and can target hypoxic tumor niches.
Purpose of the Study:
- To investigate the anticancer effects of SeNPs on HepG2 cells under hypoxic conditions.
- To evaluate the impact of SeNPs on hypoxia-inducible factors (HIFs) translocation.
- To explore SeNPs' potential in combination cancer chemotherapy.
Main Methods:
- Culturing HepG2 cells under normoxic and hypoxic conditions.
- Treating cells with varying concentrations of SeNPs.
- Assessing cell viability (LD50), DNA damage, nuclear condensation, and mitochondrial membrane potential.
- Analyzing HIFs translocation using cellular assays.
Main Results:
- SeNPs induced HepG2 cell death in both normoxic and hypoxic conditions, with higher LD50 under hypoxia.
- SeNP concentration correlated directly with cell death.
- SeNPs caused increased DNA damage, nuclear condensation, and mitochondrial dysfunction.
- SeNPs inhibited the translocation of HIFs from the cytoplasm to the nucleus.
Conclusions:
- SeNPs disrupt the tumor microenvironment by inhibiting HIF translocation, crucial for cancer cell survival in hypoxia.
- SeNPs demonstrate potential as an adjuvant in combination cancer chemotherapy, possibly enhancing drugs like doxorubicin (DOX).
- Further research is warranted to explore SeNPs' synergistic effects with conventional chemotherapeutics.
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