The macrolide antibiotic renaissance

被引:301
作者
Dinos, George P. [1 ]
机构
[1] Univ Patras, Dept Biochem, Sch Med, Patras 26500, Greece
关键词
23S RIBOSOMAL-RNA; IN-VITRO ACTIVITY; PEPTIDYL TRANSFERASE CENTER; ALKYL ACETAMIDE MOIETY; STREPTOCOCCUS-PNEUMONIAE; ESCHERICHIA-COLI; ANTIBACTERIAL ACTIVITY; PROTEIN-SYNTHESIS; LINCOSAMIDE-STREPTOGRAMIN; TELITHROMYCIN RESISTANCE;
D O I
10.1111/bph.13936
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Macrolides represent a large family of protein synthesis inhibitors of great clinical interest due to their applicability to human medicine. Macrolides are composed of a macrocyclic lactone of different ring sizes, to which one or more deoxy-sugar or amino sugar residues are attached. Macrolides act as antibiotics by binding to bacterial 50S ribosomal subunit and interfering with protein synthesis. The high affinity of macrolides for bacterial ribosomes, together with the highly conserved structure of ribosomes across virtually all of the bacterial species, is consistent with their broad-spectrum activity. Since the discovery of the progenitor macrolide, erythromycin, in 1950, many derivatives have been synthesised, leading to compounds with better bioavailability and acid stability and improved pharmacokinetics. These efforts led to the second generation of macrolides, including well-known members such as azithromycin and clarithromycin. Subsequently, in order to address increasing antibiotic resistance, a third generation of macrolides displaying improved activity against many macrolide resistant strains was developed. However, these improvements were accompanied with serious side effects, leading to disappointment and causing many researchers to stop working on macrolide derivatives, assuming that this procedure had reached the end. In contrast, a recent published breakthrough introduced a new chemical platform for synthesis and discovery of a wide range of diverse macrolide antibiotics. This chemical synthesis revolution, in combination with reduction in the side effects, namely, Ketek effects', has led to a macrolide renaissance, increasing the hope for novel and safe therapeutic agents to combat serious human infectious diseases.
引用
收藏
页码:2967 / 2983
页数:17
相关论文
共 231 条
[71]   THE PHARMACOKINETICS OF AZITHROMYCIN IN HUMAN SERUM AND TISSUES [J].
FOULDS, G ;
SHEPARD, RM ;
JOHNSON, RB .
JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 1990, 25 :73-82
[72]  
Franceschi F., 2004, Current Drug Targets - Infectious Disorders, V4, P177, DOI 10.2174/1568005043340740
[73]   Synthesis and in vitro antibiotic activity of 16-membered 9-O-arylalkyloxime macrolides [J].
Fu, H ;
Marquez, S ;
Gu, XR ;
Katz, L ;
Myles, DC .
BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2006, 16 (05) :1259-1266
[74]   Binding site of macrolide antibiotics on the ribosome: New resistance mutation identifies a specific interaction of ketolides with rRNA [J].
Garza-Ramos, G ;
Xiong, LQ ;
Zhong, P ;
Mankin, A .
JOURNAL OF BACTERIOLOGY, 2001, 183 (23) :6898-6907
[75]   STOFFWECHSELPRODUKTE VON ACTINOMYCETEN .21. LANKAMYCIN UND LANKACIDIN [J].
GAUMANN, E ;
HUTTER, R ;
KELLERSCHIERLEIN, W ;
NEIPP, L ;
PRELOG, V ;
ZAHNER, H .
HELVETICA CHIMICA ACTA, 1960, 43 (02) :601-606
[76]   The wobbly status of ketolides: where do we stand? [J].
Georgopapadakou, Nafsika H. .
EXPERT OPINION ON INVESTIGATIONAL DRUGS, 2014, 23 (10) :1313-1319
[77]   PHARMACOKINETIC AND INVIVO STUDIES WITH AZITHROMYCIN (CP-62,993), A NEW MACROLIDE WITH AN EXTENDED HALF-LIFE AND EXCELLENT TISSUE DISTRIBUTION [J].
GIRARD, AE ;
GIRARD, D ;
ENGLISH, AR ;
GOOTZ, TD ;
CIMOCHOWSKI, CR ;
FAIELLA, JA ;
HASKELL, SL ;
RETSEMA, JA .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 1987, 31 (12) :1948-1954
[78]  
GRASSI GG, 1986, CHEMIOTERAPIA, V5, P177
[79]   CONFORMATIONAL ALTERATION OF MESSENGER-RNA STRUCTURE AND THE POSTTRANSCRIPTIONAL REGULATION OF ERYTHROMYCIN-INDUCED DRUG-RESISTANCE [J].
GRYCZAN, TJ ;
GRANDI, G ;
HAHN, J ;
GRANDI, R ;
DUBNAU, D .
NUCLEIC ACIDS RESEARCH, 1980, 8 (24) :6081-6097
[80]   Regulation of Gene Expression by Macrolide-Induced Ribosomal Frameshifting [J].
Gupta, Pulkit ;
Kannan, Krishna ;
Mankin, Alexander S. ;
Vazquez-Laslop, Nora .
MOLECULAR CELL, 2013, 52 (05) :629-642