| Modoflaner |
![]() Last updated: 13/09/2025 |
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(Not known by any other names) |
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Modoflaner is a novel veterinary antiparasitic treatment | |
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Currently mainly used for research but shown to effective at controlling mites, ticks, fleas and lice | |
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Dogs |
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Not approved | |
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Not approved |
| Chemical structure |
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None | |
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C₂₃H₁₀F₁₂IN₃O₂ | |
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C1=CC(=C(C(=C1)NC(=O)C2=CN=C(C=C2)F)F)C(=O)NC3=C(C=C(C=C3I)C(C(F)(F)F)(C(F)(F)F)F)C(F)(F)F | |
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IUJSREIEVDNHMT-UHFFFAOYSA-N | |
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InChI=1S/C23H10F12IN3O2/c24-15-5-4-9(8-37-15)18(40)38-14-3-1-2-11(16(14)25)19(41)39-17-12(21(27,28)29)6-10(7-13(17)36)20(26,22(30,31)32)23(33,34)35/h1-8H,(H,38,40)(H,39,41) | |
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Yes |
| General status |
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Antiparasitic | ||||||||||||||
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Meta-diamide insecticide; Met-diamide acaricide | ||||||||||||||
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The exact mode of action is unclear but thought to work by blocking GABA-gated chloride channels, leading to neurological hyperexcitation and paralysis in target pests | ||||||||||||||
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[GABA-gated chloride channel, Antagonist] | ||||||||||||||
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1331922-53-2 | ||||||||||||||
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No data found | ||||||||||||||
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None allocated | ||||||||||||||
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138490927 | ||||||||||||||
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No data found | ||||||||||||||
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Antiparasitic | ||||||||||||||
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None allocated | ||||||||||||||
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No | ||||||||||||||
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715.23 | ||||||||||||||
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6-fluoro-N-(2-fluoro-3-{[4-(heptafluoropropan-2-yl)-2-iodo-6-(trifluoromethyl)phenyl]carbamoyl}phenyl)pyridine-3-carboxamide | ||||||||||||||
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6-fluoro-N-[2-fluoro-3-[[4-(1,1,1,2,3,3,3-heptafluoropropan-2-yl)-2-iodo-6-(trifluoromethyl)phenyl]carbamoyl]phenyl]pyridine-3-carboxamide | ||||||||||||||
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6-fluoro-N-[2-fluoro-3-[[[2-iodo-4-[1,2,2,2-tetrafluoro-1-(trifluoromethyl)ethyl]-6-(trifluoromethyl)phenyl]amino]carbonyl]phenyl]-3-pyridinecarboxamide | ||||||||||||||
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| Commercial |
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Novel | |||
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2022, introduced | |||
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The synthesis of modoflaner involves a multi-step organic process designed to construct its complex fluorinated isophenylamide structure. It begins with the preparation of a fluorinated nicotinamide core, which is then coupled via an amide bond to a diaryl intermediate containing a trifluoromethyl group, a fluoro substituent, and a strategically placed iodine atom. A key step includes the introduction of a heptafluoropropan-2-yl group, which enhances lipophilicity and bioactivity. | |||
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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 |
None
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| Terrestrial ecotoxicology |
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| Aquatic ecotoxicology |
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| General |
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High (class III) | - | - | ||||||||
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Eliminated via hepatic metabolism, followed by fecal excretion | Q3 Q = Miscellaneous data from online sources 3 = Unverified data of known source |
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| Health issues |
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No information available | ||||||||||||||||||||||||||||
| Handling issues |
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No information available | |||
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Not listed (Not listed) | |||
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modoflaner | ||
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| Record last updated: | 13/09/2025 |
| 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 |
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