ML-210

Catalog No.: A20475

GPX4 inhibitor

ML-210??the most potent compound in the nitroisoxazole series?? is a selective covalent inhibitor of glutathione peroxidase 4 (GPX4) by binding the selenocysteine residue.
Grouped product items
Product Name Price Stock Qty
ML-210 5mg
$84.00
In stock
ML-210 10mg
$144.00
In stock
ML-210 50mg
$428.00
In stock
ML-210 100mg
$856.00
In stock
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Important Notice: For research use only. We do not sell to patients.

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Adooq Products cited in reputable paper
Biological Activity
Discription ML-210??the most potent compound in the nitroisoxazole series?? is a selective covalent inhibitor of glutathione peroxidase 4 (GPX4) by binding the selenocysteine residue.
Product Information
Catalog Num A20475
Formula C22H20Cl2N4O4
Molecular Weight 475.32
CAS Number 1360705-96-9
SMILES O=C(N1CCN(C(C2=CC=C(Cl)C=C2)C3=CC=C(Cl)C=C3)CC1)C4=NOC(C)=C4[N+]([O-])=O
Synonyms CID 49766530; CID-49766530; CID49766530; ML 210; ML210
Storage

Store lyophilized at -20ºC, keep desiccated.
In lyophilized form, the chemical is stable for 36 months.
In solution, store at -20ºC and use within 3 months to prevent loss of potency. Aliquot to avoid multiple freeze/thaw cycles.

Solubility
In vitro DMSO 14 mg/mL (29.45 mM)
Water Insoluble
Ethanol 4 mg/mL
* <1 mg/ml means slightly soluble or insoluble.
* Please note that Adooq tests the solubility of all compounds in-house, and the actual solubility may differ slightly from published values. This is normal and is due to slight batch-to-batch variations.
Preparing Stock Solutions
Concentration / Solvent Volume / Mass 1 mg 5 mg 10 mg
0.1 mM 21.04 mL 105.19 mL 210.38 mL
0.5 mM 4.21 mL 21.04 mL 42.08 mL
1 mM 2.1 mL 10.52 mL 21.04 mL
5 mM 0.42 mL 2.1 mL 4.21 mL
Useful Calculator

This calculator helps you calculate mass of compound based on solution concentration, volume and molecular weight in a specific solution using the formula:

Mass (mg) = Concentration (mM) × Volume (mL) × Molecular Weight (g/mol)

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Please check COA/MSDS for correct molecular weight.

Calculate the dilution required to prepare a stock solution.
This equation is commonly abbreviated as: C1V1 = C2V2

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