Superoxide dismutase 2 (SOD-2), also referred to as mitochondrial manganese superoxide dismutase (MnSOD), is an integral enzyme located within the mitochondria, the cell's powerhouses. Its primary role is to safeguard these organelles by catalyzing the dismutation of superoxide radicals into molecular oxygen and hydrogen peroxide. Given that the mitochondria are pivotal sites for electron transport and oxidative phosphorylation, they are susceptible to the production of reactive oxygen species (ROS), particularly the superoxide anion. ROS can wreak havoc on cellular components, damaging proteins, lipids, and DNA. The presence of SOD-2 ensures that these deleterious superoxide radicals are rapidly converted into less reactive species, thus playing a critical role in maintaining the integrity and functionality of the mitochondria.
SOD-2 inhibitors are compounds that specifically curtail the activity of the SOD-2 enzyme. By doing so, they can modulate the levels of superoxide radicals within the mitochondria. The design and exploration of SOD-2 inhibitors arise from the understanding of the enzyme's structure and its active site, which contains a manganese ion essential for its catalytic activity. Various molecular entities, from small organic molecules to more complex compounds, have been investigated for their ability to inhibit SOD-2. The mechanisms by which these inhibitors work can range from chelating the manganese ion, preventing its participation in catalysis, to altering the enzyme's conformation, rendering it inactive.
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| Product Name | CAS # | Catalog # | QUANTITY | Price | Citations | RATING |
|---|---|---|---|---|---|---|
Doxorubicin | 23214-92-8 | sc-280681 sc-280681A | 1 mg 5 mg | $173.00 $418.00 | 43 | |
Doxorubicin has been shown to decrease SOD-2 expression in certain cell types. The compound might exert its effect by generating reactive oxygen species, which can alter mitochondrial dynamics and subsequently reduce SOD-2 levels. | ||||||
Paraquat chloride | 1910-42-5 | sc-257968 | 250 mg | $149.00 | 7 | |
Paraquat induces oxidative stress. It may reduce SOD-2 expression by overwhelming the antioxidant defense mechanism, leading to reduced transcription of antioxidant genes including SOD-2. | ||||||
Rotenone | 83-79-4 | sc-203242 sc-203242A | 1 g 5 g | $89.00 $254.00 | 41 | |
Rotenone is an inhibitor of mitochondrial electron transport chain complex I. It can reduce SOD-2 expression possibly by inducing mitochondrial dysfunction and oxidative stress. | ||||||
2-Deoxy-D-glucose | 154-17-6 | sc-202010 sc-202010A | 1 g 5 g | $65.00 $210.00 | 26 | |
This glucose analog can decrease SOD-2 expression by inhibiting glycolysis and increasing oxidative stress, thereby affecting the transcription of SOD-2. | ||||||
Actinomycin D | 50-76-0 | sc-200906 sc-200906A sc-200906B sc-200906C sc-200906D | 5 mg 25 mg 100 mg 1 g 10 g | $73.00 $238.00 $717.00 $2522.00 $21420.00 | 53 | |
Actinomycin D intercalates DNA and inhibits RNA synthesis. It may reduce SOD-2 expression by suppressing its transcription. | ||||||
Fluorouracil | 51-21-8 | sc-29060 sc-29060A | 1 g 5 g | $36.00 $149.00 | 11 | |
Can reduce SOD-2 levels possibly by inducing cellular stress and affecting various transcriptional pathways linked to SOD-2. | ||||||
Arsenic(III) oxide | 1327-53-3 | sc-210837 sc-210837A | 250 g 1 kg | $87.00 $224.00 | ||
Arsenic trioxide can down-regulate SOD-2 possibly by inducing oxidative stress and altering cellular antioxidant defense mechanisms. | ||||||
Cisplatin | 15663-27-1 | sc-200896 sc-200896A | 100 mg 500 mg | $76.00 $216.00 | 101 | |
Cisplatin may decrease SOD-2 expression by inducing DNA damage and interfering with transcriptional machinery. | ||||||
Tamoxifen | 10540-29-1 | sc-208414 | 2.5 g | $256.00 | 18 | |
Tamoxifen, an estrogen receptor modulator, can reduce SOD-2 expression in certain cell types, possibly through its effects on estrogen receptor-mediated signaling. | ||||||
Thapsigargin | 67526-95-8 | sc-24017 sc-24017A | 1 mg 5 mg | $94.00 $349.00 | 114 | |
Thapsigargin induces endoplasmic reticulum stress and can reduce SOD-2 levels by altering cellular stress responses and transcriptional regulation. | ||||||