A novel approach for the solid-phase synthesis of substituted cyclic guanidines, their respective bis analogues, and N-acylated guanidines from N-acylated amino acid amides

被引:24
作者
Acharya, AN [1 ]
Ostresh, JM [1 ]
Houghten, RA [1 ]
机构
[1] Torrey Pines Inst Mol Studies, San Diego, CA 92121 USA
来源
JOURNAL OF COMBINATORIAL CHEMISTRY | 2001年 / 3卷 / 06期
关键词
D O I
10.1021/cc0100262
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
An efficient method for the solid-phase synthesis of cyclic guanidines from N-acylated amino acid amides, his cyclic guanidines from N-acylated dipeptides derived from orthogonally protected diamino acids, and N-acylated guanidines from disubstituted cyclic guanidines is described. The exhaustive reduction of N-acylated amino acid amides yields diamines that on treatment with cyanogen bromide lead to the formation of cyclic guanidines. Resin-bound orthogonally protected diamino acids (i.e., N-alpha-Fmoc-N-x-(Boc)-diamino acid, x = beta, gamma, delta,is an element of) were N-acylated following removal of the Fmoc group. Removal of the Boc functionality from the side chain then generated a primary amine. Subsequent coupling of Boc amino acids, followed by removal of the Boc group, generated dipeptides that were N-acylated. Exhaustive reduction of amide bonds of the N-acylated dipeptides generated tetraamines having four secondary amines, which upon cyclization with cyanogen bromide afforded the resin-bound trisubstituted bis cyclic guanidines. Treatment of the resin-bound disubstituted cyclic guanidines with carboxylic acids gave N-acylated guanidines. On the basis of their high yield and purity, bis cyclic guanidines derived from N-alpha-Fmoc-N-is an element of-Boc-lysine and N-acylated guanidines were chosen for preparation of mixture-based combinatorial libraries. Details of the preparation of these positional scanning libraries using the "libraries from libraries" concept tine presented.
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页码:578 / 589
页数:12
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