Mitratapide |
![]() Last updated: 15/09/2025 |
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(Not known by any other names) |
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A veterinary medication used for weight management | |
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Excess weight and obesity | |
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Dogs |
Approval status |
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Not approved | |
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Not approved |
Chemical structure |
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Mitratapide exhibits cis-trans isomerism and optical isomerism, due to the presence of multiple chiral centres and rigid ring systems in its complex molecular structure. The molecule contains several asymmetric carbon atoms, including those in the dioxolane ring and the sec-butyl side chain, which allow for the existence of distinct stereoisomers. The marketed form of mitratapide is a specific stereoisomer. | |
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C₃₆H₄₁ClN₈O₄S | |
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CC[C@@H](C)N1C(=O)N(C=N1)C2=CC=C(C=C2)N3CCN(CC3)C4=CC=C(C=C4)OC[C@@H]5CO[C@@](O5)(CSC6=NN=CN6C)C7=CC=C(C=C7)Cl | |
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HQSRVYUCBOCBLY-XOOFNSLWSA-N | |
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InChI=1S/C36H41ClN8O4S/c1-4-26(2)45-35(46)44(25-39-45)31-11-9-29(10-12-31)42-17-19-43(20-18-42)30-13-15-32(16-14-30)47-21-33-22-48-36(49-33,27-5-7-28(37)8-6-27)23-50-34-40-38-24-41(34)3/h5-16,24-26,33H,4,17-23H2,1-3H3/t26-,33-,36-/m1/s1 | |
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Yes |
General status |
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Antiobesity agent | |
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Piperazine drug; Triazole compound | |
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Synthetic | |
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Works via the inhibition of microsomal triglyceride transfer proteins | |
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[Microsomal triglyceride transfer protein, Inhibitor] | |
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179602-65-4 | |
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213047 | |
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Centrally acting antiobesity products: Peripherally acting antiobesity products | |
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QA08AB90 | |
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No | |
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Not approved | |
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717.29 | |
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2-[(2R)-butan-2-yl]-4-[4-[4-[4-[[(2S,4R)-2-(4-chlorophenyl)-2-[(4-methyl-1,2,4-triazol-3-yl)sulfanylmethyl]-1,3-dioxolan-4-yl]methoxy]phenyl]piperazin-1-yl]phenyl]-1,2,4-triazol-3-one | |
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Pure substnce is a solid. Products are a colourless to slightly yellow solution |
Commercial |
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Current | |||
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2006, first authorised EU | |||
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Oral use | |||
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The production of mitratapide involves a multi-step chemical synthesis designed to yield a single, stereochemically defined isomer. The process begins with the construction of its complex heterocyclic scaffold, including a dioxolane ring and multiple nitrogen-containing moieties, through sequential condensation and cyclization reactions. Key steps include the formation of the sulfonamide linkage and the introduction of the chlorinated aromatic ring, both of which are critical for its biological activity. | |||
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Published GHG data is not available for most pharmaceuticals. However, according to industry, global averages suggest producing 1 kg of a typical active pharmaceutical ingredient can range from 10 to 100 kg CO₂e for small molecule drugs and potentially up to 1000 kg CO₂e for complex biologicals such as vaccines, depending on the drug type, its formulation, complexity of synthesis, solvent recovery, and energy sources used. |
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As this parameter is not normally measured directly, a surrogate measure is used: ‘Photochemical oxidative DT₅₀’. Where data is available, this can be found in the Fate Indices section below. | ||||||||||
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Known metabolites |
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Terrestrial ecotoxicology |
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General |
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Metabolises in the luver with rapid excretion via the faeces | Q3 Q = Miscellaneous data from online sources 3 = Unverified data of known source |
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Health issues |
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High doses can lead to gastrointestinal disturbances, hepatic effects, and reduced appetite |
Handling issues |
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No information available | |||
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Health: H302, H315, H319, H335 | |||
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Not regulated | |||
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Shelf life unopened is around 3 years. Open products should be used within 3 months.Store under ambient conditions. |
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mitratapide | ||
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Record last updated: | 15/09/2025 |
Contact: | aeru@herts.ac.uk |
Please cite as: | Lewis, K.A., Tzilivakis, J., Warner, D. and Green, A. (2016) An international database for pesticide risk assessments and management. Human and Ecological Risk Assessment: An International Journal, 22(4), 1050-1064. DOI: 10.1080/10807039.2015.1133242 |