Pathways Knowlegdes
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| Pathway | DOIs | Note |
|---|---|---|
| N-Oxide Electron Transfer Accession ID: PathBank:SMP0001903 |
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| Metabolism Accession ID: Reactome:R-BTA-1430728 |
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| Phase I - Functionalization of compounds Accession ID: Reactome:R-BTA-211945 |
|
Strolin Benedetti M, Whomsley R, Baltes E. Involvement of enzymes other than CYPs in the oxidative metabolism of xenobiotics. Expert Opinion on Drug Metabolism & Toxicology. 2006 Nov 24;2(6):895–921. doi: 10.1517/17425255.2.6.895.; Guengerich FP. Cytochrome P450s and other enzymes in drug metabolism and toxicity. The AAPS Journal. 2006 Mar 01;8(1):e101–11. doi: 10.1208/aapsj080112.; Danielson PB. The cytochrome P450 superfamily: biochemistry, evolution and drug metabolism in humans. Curr Drug Metab. 2002 Dec;3(6):561–97. doi: 10.2174/1389200023337054. PMID: 12369887. |
| Biological oxidations Accession ID: Reactome:R-CEL-211859 |
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| Metabolism Accession ID: Reactome:R-CFA-1430728 |
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| Biological oxidations Accession ID: Reactome:R-HSA-211859 |
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| FMO oxidises nucleophiles Accession ID: Reactome:R-HSA-217271 |
|
Krueger SK, Williams DE. Mammalian flavin-containing monooxygenases: structure/function, genetic polymorphisms and role in drug metabolism. Pharmacology & Therapeutics. 2005 Jun;106(3):357–87. doi: 10.1016/j.pharmthera.2005.01.001.; Cashman JR. The role of flavin-containing monooxygenases in drug metabolism and development. Curr Opin Drug Discov Devel. 2003 Jul;6(4):486–93. PMID: 12951812. |
| Disease Accession ID: Reactome:R-HSA-1643685 |
|
Javorsky A, Humbert PO, Kvansakul M. Structural basis of coronavirus E protein interactions with human PALS1 PDZ domain. Communications Biology. 2021 Jun 11;4(1):724. doi: 10.1038/s42003-021-02250-7.; Ordonez AA, Bullen CK, Villabona-Rueda AF, Thompson EA, Turner ML, Davis SL, Komm O, Powell JD, D'Alessio FR, Yolken RH, Jain SK, Jones-Brando L. Sulforaphane exhibits in vitro and in vivo antiviral activity against pandemic SARS-CoV-2 and seasonal HCoV-OC43 coronaviruses. bioRxiv. 2021 Mar 25;(). PMID: 33791708; PMCID: PMC8010735.; Olagnier D, Farahani E, Thyrsted J, Blay-Cadanet J, Herengt A, Idorn M, Hait A, Hernaez B, Knudsen A, Iversen MB, Schilling M, Jørgensen SE, Thomsen M, Reinert LS, Lappe M, Hoang H, Gilchrist VH, Hansen AL, Ottosen R, Nielsen CG, Møller C, van der Horst D, Peri S, Balachandran S, Huang J, Jakobsen M, Svenningsen EB, Poulsen TB, Bartsch L, Thielke AL, Luo Y, Alain T, Rehwinkel J, Alcamí A, Hiscott J, Mogensen TH, Paludan SR, Holm CK. Author Correction: SARS-CoV2-mediated suppression of NRF2-signaling reveals potent antiviral and anti-inflammatory activity of 4-octyl-itaconate and dimethyl fumarate. Nature Communications. 2020 Oct 21;11(1):5419. doi: 10.1038/s41467-020-19363-y.; Wynn D, Lategan TW, Sprague TN, Rousseau FS, Fox EJ. Monomethyl fumarate has better gastrointestinal tolerability profile compared with dimethyl fumarate. Multiple Sclerosis and Related Disorders. 2020 Oct;45():102335. doi: 10.1016/j.msard.2020.102335.; Toto A, Ma S, Malagrinò F, Visconti L, Pagano L, Stromgaard K, Gianni S. Comparing the binding properties of peptides mimicking the Envelope protein of |
| Metabolism Accession ID: Reactome:R-MMU-1430728 |
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| Biological oxidations Accession ID: Reactome:R-MMU-211859 |
- | |
| FMO oxidises nucleophiles Accession ID: Reactome:R-MMU-217271 |
|
Krueger SK, Williams DE. Mammalian flavin-containing monooxygenases: structure/function, genetic polymorphisms and role in drug metabolism. Pharmacology & Therapeutics. 2005 Jun;106(3):357–87. doi: 10.1016/j.pharmthera.2005.01.001.; Cashman JR. The role of flavin-containing monooxygenases in drug metabolism and development. Curr Opin Drug Discov Devel. 2003 Jul;6(4):486–93. PMID: 12951812. |
| Phase I - Functionalization of compounds Accession ID: Reactome:R-RNO-211945 |
|
Strolin Benedetti M, Whomsley R, Baltes E. Involvement of enzymes other than CYPs in the oxidative metabolism of xenobiotics. Expert Opinion on Drug Metabolism & Toxicology. 2006 Nov 24;2(6):895–921. doi: 10.1517/17425255.2.6.895.; Guengerich FP. Cytochrome P450s and other enzymes in drug metabolism and toxicity. The AAPS Journal. 2006 Mar 01;8(1):e101–11. doi: 10.1208/aapsj080112.; Danielson PB. The cytochrome P450 superfamily: biochemistry, evolution and drug metabolism in humans. Curr Drug Metab. 2002 Dec;3(6):561–97. doi: 10.2174/1389200023337054. PMID: 12369887. |
| Phase I - Functionalization of compounds Accession ID: Reactome:R-SSC-211945 |
|
Strolin Benedetti M, Whomsley R, Baltes E. Involvement of enzymes other than CYPs in the oxidative metabolism of xenobiotics. Expert Opinion on Drug Metabolism & Toxicology. 2006 Nov 24;2(6):895–921. doi: 10.1517/17425255.2.6.895.; Guengerich FP. Cytochrome P450s and other enzymes in drug metabolism and toxicity. The AAPS Journal. 2006 Mar 01;8(1):e101–11. doi: 10.1208/aapsj080112.; Danielson PB. The cytochrome P450 superfamily: biochemistry, evolution and drug metabolism in humans. Curr Drug Metab. 2002 Dec;3(6):561–97. doi: 10.2174/1389200023337054. PMID: 12369887. |
| Biological oxidations Accession ID: Reactome:R-BTA-211859 |
- | |
| FMO oxidises nucleophiles Accession ID: Reactome:R-BTA-217271 |
|
Krueger SK, Williams DE. Mammalian flavin-containing monooxygenases: structure/function, genetic polymorphisms and role in drug metabolism. Pharmacology & Therapeutics. 2005 Jun;106(3):357–87. doi: 10.1016/j.pharmthera.2005.01.001.; Cashman JR. The role of flavin-containing monooxygenases in drug metabolism and development. Curr Opin Drug Discov Devel. 2003 Jul;6(4):486–93. PMID: 12951812. |
| FMO oxidises nucleophiles Accession ID: Reactome:R-CEL-217271 |
|
Krueger SK, Williams DE. Mammalian flavin-containing monooxygenases: structure/function, genetic polymorphisms and role in drug metabolism. Pharmacology & Therapeutics. 2005 Jun;106(3):357–87. doi: 10.1016/j.pharmthera.2005.01.001.; Cashman JR. The role of flavin-containing monooxygenases in drug metabolism and development. Curr Opin Drug Discov Devel. 2003 Jul;6(4):486–93. PMID: 12951812. |
| Phase I - Functionalization of compounds Accession ID: Reactome:R-DRE-211945 |
|
Strolin Benedetti M, Whomsley R, Baltes E. Involvement of enzymes other than CYPs in the oxidative metabolism of xenobiotics. Expert Opinion on Drug Metabolism & Toxicology. 2006 Nov 24;2(6):895–921. doi: 10.1517/17425255.2.6.895.; Guengerich FP. Cytochrome P450s and other enzymes in drug metabolism and toxicity. The AAPS Journal. 2006 Mar 01;8(1):e101–11. doi: 10.1208/aapsj080112.; Danielson PB. The cytochrome P450 superfamily: biochemistry, evolution and drug metabolism in humans. Curr Drug Metab. 2002 Dec;3(6):561–97. doi: 10.2174/1389200023337054. PMID: 12369887. |
| Biological oxidations Accession ID: Reactome:R-RNO-211859 |
- | |
| FMO oxidises nucleophiles Accession ID: Reactome:R-RNO-217271 |
|
Krueger SK, Williams DE. Mammalian flavin-containing monooxygenases: structure/function, genetic polymorphisms and role in drug metabolism. Pharmacology & Therapeutics. 2005 Jun;106(3):357–87. doi: 10.1016/j.pharmthera.2005.01.001.; Cashman JR. The role of flavin-containing monooxygenases in drug metabolism and development. Curr Opin Drug Discov Devel. 2003 Jul;6(4):486–93. PMID: 12951812. |
| Metabolism Accession ID: Reactome:R-SSC-1430728 |
- |