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Mechanistic studies of melanogenesis: the influence of N-substitution on dopamine quinone cyclization
Borovansky J., Edge R., Land E.J., Navaratnam S., Pavel S., Ramsden C.A., Riley P.A., Smit N.P.
Jazyk angličtina Země Dánsko
NLK
Medline Complete (EBSCOhost)
od 1999-01-01 do 2007-12-31
Wiley Online Library (archiv)
od 1997 do 2007
- MeSH
- Agaricus enzymologie MeSH
- antitumorózní látky chemie terapeutické užití MeSH
- dopamin analogy a deriváty chemie MeSH
- financování organizované MeSH
- fungální proteiny chemie MeSH
- isomerie MeSH
- melaniny chemická syntéza chemie MeSH
- melanom enzymologie farmakoterapie MeSH
- molekulární struktura MeSH
- nádorové proteiny chemie MeSH
- oxidace-redukce MeSH
- prekurzory léčiv chemie MeSH
- tyrosinasa chemie MeSH
The influence of side-chain structure on the mode of reaction of ortho-quinone amines has been investigated with a view, ultimately, to developing potential methods of therapeutic intervention by manipulating the early stages of melanogenesis. Four N-substituted dopamine derivatives have been prepared and quinone formation studied using pulse radiolysis and tyrosinase-oximetry. Ortho-quinones with an amide or urea side chain were relatively stable, although evidence for slow formation of isomeric para-quinomethanes was observed. A thiourea derivative cyclized fairly rapidly (k = 1.7/s) to a product containing a seven-membered ring, whereas a related amidine gave more rapidly (k approximately 2.5 x 10(2)/s) a stable spirocyclic product. The results suggest that cyclization of amides, ureas and carbamates (NHCO-X; X = R, NHR or OR) does not occur and is not, therefore, a viable approach to the formation of tyrosinase-activated antimelanoma prodrugs. It is also concluded that for N-acetyldopamine spontaneous ortho-quinone to para-quinomethane isomerization is slow.
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- $a Department of Biochemistry, 1st Faculty of Medicine, Charles University, U.nemocnice 5, 128 53 Prague 2, Czech Republic
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- $a The influence of side-chain structure on the mode of reaction of ortho-quinone amines has been investigated with a view, ultimately, to developing potential methods of therapeutic intervention by manipulating the early stages of melanogenesis. Four N-substituted dopamine derivatives have been prepared and quinone formation studied using pulse radiolysis and tyrosinase-oximetry. Ortho-quinones with an amide or urea side chain were relatively stable, although evidence for slow formation of isomeric para-quinomethanes was observed. A thiourea derivative cyclized fairly rapidly (k = 1.7/s) to a product containing a seven-membered ring, whereas a related amidine gave more rapidly (k approximately 2.5 x 10(2)/s) a stable spirocyclic product. The results suggest that cyclization of amides, ureas and carbamates (NHCO-X; X = R, NHR or OR) does not occur and is not, therefore, a viable approach to the formation of tyrosinase-activated antimelanoma prodrugs. It is also concluded that for N-acetyldopamine spontaneous ortho-quinone to para-quinomethane isomerization is slow.
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