The design of drug candidate molecules as selective inhibitors of therapeutically relevant protein kinases

被引:103
作者
Fischer, PM [1 ]
机构
[1] Cyclacel Ltd, Dundee DD1 5JJ, Scotland
关键词
protein kinase; inhibitor design; cancer; ATP antagonist; structure; selectivity;
D O I
10.2174/0929867043365062
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The human genome encompasses some 2,000 proteins that utilize adenosine 5'-triphosphate (ATP) in one way or another and some 500 of these are protein-tyrosine and protein-serine/threonine kinases (PTKs & PSTKs). Substrate phosphorylation by these enzymes is nature's predominant molecular way of organizing cellular signal transduction and regulating biochemical processes in general. It is not surprising, therefore, that abnormal phosphorylation of cellular proteins is a hallmark of disease and that there has been a growing interest in the use of kinase inhibitors as drugs. In fact the search for such agents has recently culminated in the approval of the first kinase inhibitor drugs for medical use. Although it has been demonstrated exhaustively that potent and structurally diverse ATP-antagonistic small molecule kinase inhibitors can be found through mass screening and structure-guided design, the question of biochemical, cellular, and in vivo selectivity of such inhibitors remains much less clear. Here the medicinal chemistry of kinase inhibitors is reviewed critically with particular emphasis on target selectivity and specificity. Approaches based on chemical genomics, combinatorial target-guided ligand assembly, cornputational chemistry, and structural biology techniques, which aim at classifying both inhibitors and kinase targets, are given special emphasis. The various strategies in which differences in biochemical mechanism of kinase function can be exploited in order to attain selective inhibition are also discussed. Furthermore, recent developments in the design of inhibitors to selected individual validated therapeutic kinase targets, including cell cycle kinases and receptor PTKs, etc. are summarised.
引用
收藏
页码:1563 / 1583
页数:21
相关论文
共 241 条
[1]   Probing the catalytic mechanism of the insulin receptor kinase with a tetrafluorotyrosine-containing peptide substrate [J].
Ablooglu, AJ ;
Till, JH ;
Kim, K ;
Parang, K ;
Cole, PA ;
Hubbard, SR ;
Kohanski, RA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (39) :30394-30398
[2]   Kinetic and catalytic mechanisms of protein kinases [J].
Adams, JA .
CHEMICAL REVIEWS, 2001, 101 (08) :2271-2290
[3]   The substrate-assisted general base catalysis model for phosphate monoester hydrolysis: Evaluation using reactivity comparisons [J].
Admiraal, SJ ;
Herschlag, D .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (10) :2145-2148
[4]   Potential benefits of the irreversible pan-erbB inhibitor, CI-1033, in the treatment of breast cancer [J].
Allen, LF ;
Lenehan, PF ;
Eiseman, IA ;
Elliott, WL ;
Fry, DW .
SEMINARS IN ONCOLOGY, 2002, 29 (03) :11-21
[5]   The formation of a covalent complex between a dipeptide ligand and the src SH2 domain [J].
Alligood, KJ ;
Charifson, PS ;
Crosby, R ;
Consler, TG ;
Feldman, PL ;
Gampe, RT ;
Gilmer, TM ;
Jordan, SR ;
Milstead, MW ;
Mohr, C ;
Peel, MR ;
Rocque, W ;
Rodriguez, M ;
Rusnak, DW ;
Shewchuk, LM ;
Sternbach, DD .
BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 1998, 8 (10) :1189-1194
[6]   Mechanisms of autoinhibition and STI-571/imatinib resistance revealed by mutagenesis of BCR-ABL [J].
Azam, M ;
Latek, RR ;
Daley, GQ .
CELL, 2003, 112 (06) :831-843
[7]   The specificities of protein kinase inhibitors: an update [J].
Bain, J ;
McLauchlan, H ;
Elliott, M ;
Cohen, P .
BIOCHEMICAL JOURNAL, 2003, 371 :199-204
[8]   Enhanced phosphorylation of p53 by ATN in response to DNA damage [J].
Banin, S ;
Moyal, L ;
Shieh, SY ;
Taya, Y ;
Anderson, CW ;
Chessa, L ;
Smorodinsky, NI ;
Prives, C ;
Reiss, Y ;
Shiloh, Y ;
Ziv, Y .
SCIENCE, 1998, 281 (5383) :1674-1677
[9]   The structure of phosphorylated GSK-3β complexed with a peptide, FRATtide, that inhibits β-catenin phosphorylation [J].
Bax, B ;
Carter, PS ;
Lewis, C ;
Guy, AR ;
Bridges, A ;
Tanner, R ;
Pettman, G ;
Mannix, C ;
Culbert, AA ;
Brown, MJB ;
Smith, DG ;
Reith, AD .
STRUCTURE, 2001, 9 (12) :1143-1152
[10]   Cloning of STK13, a third human protein kinase related to Drosophila aurora and budding yeast Ipl1 that maps on chromosome 19q13.3-ter [J].
Bernard, M ;
Sanseau, P ;
Henry, C ;
Couturier, A ;
Prigent, C .
GENOMICS, 1998, 53 (03) :406-409