Selenium Anticancer Properties and Impact on Cellular Redox Status
<p>Main metabolic reactions of organic and inorganic Se compounds in humans (adapted from [<a href="#B20-antioxidants-09-00080" class="html-bibr">20</a>,<a href="#B21-antioxidants-09-00080" class="html-bibr">21</a>]). H<sub>2</sub>Se is formed during reduction both inorganic (selenate) and organic (SeMet), species. Both SeMet and CH<sub>3</sub>SeCys are enzymatically converted to CH<sub>3</sub>SeH. Glutathione (GSH) or other thiols are used in the reactions, when reduction of inorganic Se species occures. ROS are generated by two presented reactions. SeMet—L-selenomethionine, SeCys—selenocysteine, CH<sub>3</sub>SeCys—Se-methylselenocysteine, CH<sub>3</sub>SeH—monomethylselenol, GSSeSG—selenodiglutathione, GSSeH—selenopersulfide, H<sub>2</sub>Se—hydrogen selenide, GSH—reduced glutathione, GSSG—oxidized glutathione, SAM—S-adenosylmethionine, SAH—S-adenosylhomocysteine, HSePO<sub>3</sub><sup>2−</sup>—selenophosphate, SeO<sub>2</sub>—Se dioxide.</p> "> Figure 2
<p>Anticancer effect of selenium may be asserted through various events and pathways in the cell. Data from studies [<a href="#B29-antioxidants-09-00080" class="html-bibr">29</a>,<a href="#B52-antioxidants-09-00080" class="html-bibr">52</a>,<a href="#B57-antioxidants-09-00080" class="html-bibr">57</a>,<a href="#B67-antioxidants-09-00080" class="html-bibr">67</a>,<a href="#B68-antioxidants-09-00080" class="html-bibr">68</a>,<a href="#B69-antioxidants-09-00080" class="html-bibr">69</a>].</p> ">
Abstract
:1. Introduction
2. Aspects of Selenium Metabolism: Redox Activity of Se Compounds
3. Selenium Status and Its Biological Importance: Selenium in the Structure of Selenoproteins
4. Selenium and Cancer
5. Chemotherapeutic Application of Redox Active Se Compounds
6. Conclusions
Author Contributions
Conflicts of Interest
References
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Selenoprotein | Location | Main Function | References |
---|---|---|---|
GPx1 | cell cytosol and mitochondria | reduces peroxides to water | [11] |
GPx2 | gastrointestinal tract, liver | reduces free hydroperoxides of fatty acid and hydrogene peroxide | [12] |
GPx3 | plasma and extracellular fluid, kidneys | perform antioxidant function in plasma | [11,12] |
GPx4 | cell cytosol and cell membranes, testis | reduces lipid hydroperoxides, participates in ferroptosis (iron–based cell death) | [11,12] |
TRx1 | cytosol of liver, kidney, bone, heart cells | reduces thioredoxins | [12] |
TRx2 | mitochondria | reduces thioredoxins | [11] |
TRx3 | testis | reduces thioredoxins | [11] |
SelP | plasma, extracellular compartment | storage and transport of Se from liver to other tissues | [12] |
SelF | endoplasmic reticulum of liver, prostate, T-cells | possesses oxidoreductase activity, regulates protein folding | [11] |
SelS | endoplasmic reticulum | regulates cellular redox balance | [40] |
SelM | endoplasmic reticulum | regulates protein folding | [11] |
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Kuršvietienė, L.; Mongirdienė, A.; Bernatonienė, J.; Šulinskienė, J.; Stanevičienė, I. Selenium Anticancer Properties and Impact on Cellular Redox Status. Antioxidants 2020, 9, 80. https://doi.org/10.3390/antiox9010080
Kuršvietienė L, Mongirdienė A, Bernatonienė J, Šulinskienė J, Stanevičienė I. Selenium Anticancer Properties and Impact on Cellular Redox Status. Antioxidants. 2020; 9(1):80. https://doi.org/10.3390/antiox9010080
Chicago/Turabian StyleKuršvietienė, Lolita, Aušra Mongirdienė, Jurga Bernatonienė, Jurgita Šulinskienė, and Inga Stanevičienė. 2020. "Selenium Anticancer Properties and Impact on Cellular Redox Status" Antioxidants 9, no. 1: 80. https://doi.org/10.3390/antiox9010080
APA StyleKuršvietienė, L., Mongirdienė, A., Bernatonienė, J., Šulinskienė, J., & Stanevičienė, I. (2020). Selenium Anticancer Properties and Impact on Cellular Redox Status. Antioxidants, 9(1), 80. https://doi.org/10.3390/antiox9010080