Dispiro-1,2,4-trioxane analogues of a prototype dispiro-1,2,4-trioxolane: Mechanistic comparators for artemisinin in the context of reaction pathways with iron(II)

被引:107
作者
Tang, YQ
Dong, YX
Wang, XF
Sriraghavan, K
Wood, JK
Vennerstrom, JL
机构
[1] Univ Nebraska, Med Ctr 986025, Coll Pharm, Omaha, NE 68198 USA
[2] Univ Nebraska, Dept Chem, Omaha, NE 68192 USA
关键词
D O I
10.1021/jo050385+
中图分类号
O62 [有机化学];
学科分类号
070303 ; 081704 ;
摘要
Single electron reduction of the 1,2,4-trioxane heterocycle of artemisinin (1) forms primary and secondary carbon-centered radicals. The complex structure of 1 does not lend itself to a satisfactory dissection of the electronic and steric effects that influence the formation and subsequent reaction of these carbon-centered free radicals. To help demarcate these effects, we characterized the reactions of achiral dispiro-1,2,4-trioxolane 4 and dispiro-1,2,4-trioxanes 5-7 with ferrous bromide and 4-oxo-TEMPO. Our results suggest a small preference for attack of Fe(H) on the nonketal peroxide oxygen atom of 1. For 4, but not for 5 and 6, there was a strong preference for attack of Fe(H) on the less hindered peroxide bond oxygen atom. The steric hindrance afforded by a spiroadamantane in a five-membered trioxolane is evidently much greater than that for a corresponding six-membered trioxane. Unlike 1, 5-7 fragment by entropically favored beta-scission pathways forming relatively stable alpha-oxa carbon-centered radicals. These data suggest that formation of either primary or secondary carbon-centered radicals is a necessary but insufficient criterion for antimalarial activity of 1 and synthetic peroxides.
引用
收藏
页码:5103 / 5110
页数:8
相关论文
共 54 条
[21]   Bond dissociation energies and radical stabilization energies associated with substituted methyl radicals [J].
Henry, DJ ;
Parkinson, CJ ;
Mayer, PM ;
Radom, L .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (27) :6750-6756
[22]   Pyridyl group assisted deprotonation of a methyl group on silicon: Complex induced proximity effect and novel hydroxymethylation [J].
Itami, K ;
Kamei, T ;
Mitsudo, K ;
Nokami, T ;
Yoshida, J .
JOURNAL OF ORGANIC CHEMISTRY, 2001, 66 (11) :3970-3976
[23]  
Jefford CW, 2000, HELV CHIM ACTA, V83, P1239, DOI 10.1002/1522-2675(20000607)83:6&lt
[24]  
1239::AID-HLCA1239&gt
[25]  
3.0.CO
[26]  
2-S
[27]   The deoxygenation and isomerization of artemisinin and artemether and their relevance to antimalarial action [J].
Jefford, CW ;
Vicente, MGH ;
Jacquier, Y ;
Favarger, F ;
Mareda, J ;
MillassonSchmidt, P ;
Brunner, G ;
Burger, U .
HELVETICA CHIMICA ACTA, 1996, 79 (05) :1475-1487
[28]   Why artemisinin and certain synthetic peroxides are potent antimalarials. Implications for the mode of action [J].
Jefford, CW .
CURRENT MEDICINAL CHEMISTRY, 2001, 8 (15) :1803-1826
[29]   PREPARATION AND REACTIONS OF N-(PARA-TOLYLSULFONYL)SULFILIMINES [J].
JOHNSON, CR ;
MORI, K ;
NAKANISHI, A .
JOURNAL OF ORGANIC CHEMISTRY, 1979, 44 (13) :2065-2067
[30]   SYNTHESIS AND ANTIMALARIAL ACTIVITY OF (+)-DEOXOARTEMISININ [J].
JUNG, M ;
LI, X ;
BUSTOS, DA ;
ELSOHLY, HN ;
MCCHESNEY, JD ;
MILHOUS, WK .
JOURNAL OF MEDICINAL CHEMISTRY, 1990, 33 (05) :1516-1518