Strategies for discovering and derisking covalent, irreversible enzyme inhibitors

被引:299
作者
Johnson, Douglas S. [1 ]
Weerapana, Eranthie [2 ,3 ]
Cravatt, Benjamin F. [2 ,3 ]
机构
[1] Pfizer Global Res & Dev, Groton, CT 06340 USA
[2] Scripps Res Inst, Skaggs Inst Chem Biol, La Jolla, CA 92037 USA
[3] Scripps Res Inst, Dept Physiol Chem, La Jolla, CA 92037 USA
关键词
ACID AMIDE HYDROLASE; ACTIVITY-BASED PROBES; HISTONE DEACETYLASE COMPLEXES; CONTENT FUNCTIONAL PROTEOMICS; GAMMA-SECRETASE INHIBITORS; TARGET RESIDENCE TIME; ACTIVE-SITE SERINE; IN-VIVO; CLICK CHEMISTRY; DRUG DISCOVERY;
D O I
10.4155/FMC.10.21
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
This article presents several covalent inhibitors, including examples of successful drugs, as well as highly selective, irreversible inhibitors of emerging therapeutic targets, such as fatty acid amide hydolase. Covalent inhibitors have many desirable features, including increased biochemical efficiency of target disruption, less sensitivity toward pharmacokinetic parameters and increased duration of action that outlasts the pharmacokinetics of the compound. Safety concerns that must be mitigated include lack of specificity and the potential immunogenicity of protein-inhibitor adduct(s). Particular attention will be given to recent technologies, such as activity-based protein profiling, which allow one to define the proteome-wide selectivity patterns for covalent inhibitors in vitro and in vivo. For instance, any covalent inhibitor can, in principle, be modified with a 'clickable' tag to generate an activity probe that is almost indistinguishable from the original agent. These probes can be applied to any living system across a broad dose range to fully inventory their on and off targets. The substantial number of drugs on the market today that act by a covalent mechanism belies historical prejudices against the development of irreversibly acting therapeutic small molecules. Emerging proteomic technologies offer a means to systematically discriminate safe (selective) versus deleterious (nonselective) covalent inhibitors and thus should inspire their future design and development.
引用
收藏
页码:949 / 964
页数:16
相关论文
共 139 条
[31]   Characterization of the fatty acid amide hydrolase inhibitor cyclohexyl carbamic acid 3′-carbamoyl-biphenyl-3-yl ester (URB597):: Effects on anandamide and oleoylethanolamide deactivation [J].
Fegley, D ;
Gaetani, S ;
Duranti, A ;
Tontini, A ;
Mor, M ;
Tarzia, G ;
Piomelli, D .
JOURNAL OF PHARMACOLOGY AND EXPERIMENTAL THERAPEUTICS, 2005, 313 (01) :352-358
[32]   Divergent synthesis of multifunctional molecular probes to elucidate the enzyme specificity of dipeptidic γ-secretase inhibitors [J].
Fuwa, Haruhiko ;
Takahashi, Yasuko ;
Konno, Yu ;
Watanabe, Naoto ;
Miyashita, Hiroyuki ;
Sasaki, Makoto ;
Natsugari, Hideaki ;
Kan, Toshiyuki ;
Fukuyama, Tohru ;
Tomita, Taisuke ;
Iwatsubo, Takeshi .
ACS CHEMICAL BIOLOGY, 2007, 2 (06) :408-418
[33]   Chemical approaches for functionally probing the proteome [J].
Greenbaum, D ;
Baruch, A ;
Hayrapetian, L ;
Darula, Z ;
Burlingame, A ;
Medzihradszky, KF ;
Bogyo, M .
MOLECULAR & CELLULAR PROTEOMICS, 2002, 1 (01) :60-68
[34]   Epoxide electrophiles as activity-dependent cysteine protease profiling and discovery tools [J].
Greenbaum, D ;
Medzihradszky, KF ;
Burlingame, A ;
Bogyo, M .
CHEMISTRY & BIOLOGY, 2000, 7 (08) :569-581
[35]   Small molecule affinity fingerprinting:: a tool for enzyme family subclassification, target identification, and inhibitor design [J].
Greenbaum, DC ;
Arnold, WD ;
Lu, F ;
Hayrapetian, L ;
Baruch, A ;
Krumrine, J ;
Toba, S ;
Chehade, K ;
Brömme, D ;
Kuntz, ID ;
Bogyo, M .
CHEMISTRY & BIOLOGY, 2002, 9 (10) :1085-1094
[36]  
Guerciolini R, 1997, INT J OBESITY, V21, pS12
[37]  
HADVARY P, 1991, J BIOL CHEM, V266, P2021
[38]   Active-site peptide "fingerprinting" of glycosidases in complex mixtures by mass spectrometry -: Discovery of a novel retaining β-1,4-glycanase in Cellulomonas fimi [J].
Hekmat, O ;
Kim, YW ;
Williams, SJ ;
He, SM ;
Withers, SG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (42) :35126-35135
[39]   Selective haptenation of cellular or extracellular protein by chemical allergens: Association with cytokine polarization [J].
Hopkins, JE ;
Naisbitt, DJ ;
Kitteringham, NR ;
Dearman, RJ ;
Kimber, I ;
Park, BK .
CHEMICAL RESEARCH IN TOXICOLOGY, 2005, 18 (02) :375-381
[40]  
HOWARTH TT, 1976, J CHEM SOC CHEM COMM, P266