Structures of MLSBK antibiotics bound to mutated large ribosomal subunits provide a structural explanation for resistance

被引:353
作者
Tu, D
Blaha, G
Moore, PB
Steitz, TA
机构
[1] Yale Univ, Dept Mol Biophys & Biochem, New Haven, CT 06520 USA
[2] Yale Univ, Dept Chem, New Haven, CT 06520 USA
[3] Yale Univ, Howard Hughes Med Inst, New Haven, CT 06520 USA
关键词
D O I
10.1016/j.cell.2005.02.005
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
Crystal structures of H. marismortui large ribosomal subunits containing the mutation G2099A (A2058 in E. coli) with erythromycin, azithromycin, clindamycin, virginiamycin S, and telithromycin bound explain why eubacterial ribosomes containing the mutation A2058G are resistant to them. Azithromycin binds almost identically to both G2099A and wild-type subunits, but the erythromycin affinity increases by more than 10(4)-fold, implying that desolvation of the N2 of 62099 accounts for the low wild-type affinity for macrolides. All macrolides bind similarly to the H. marismortui subunit, but their binding differs significantly from what has been reported in the D. radioidurans subunit. The synergy in the binding of streptogramins A and B appears to result from a reorientation of the base of A2103 (A2062, E. coli) that stacks between them. The structure of large subunit containing a three residue deletion mutant of L22 shows a change in the L22 structure and exit tunnel shape that illuminates its macrolide resistance phenotype.
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页码:257 / 270
页数:14
相关论文
共 44 条
[1]   Synthesis and antibacterial activity of ketolides (6-O-methyl-3-oxoerythromycin derivatives):: A new class of antibacterials highly potent against macrolide-resistant and -susceptible respiratory pathogens [J].
Agouridas, C ;
Denis, A ;
Auger, JM ;
Benedetti, Y ;
Bonnefoy, A ;
Bretin, F ;
Chantot, JF ;
Dussarat, A ;
Fromentin, C ;
D'Ambrières, SG ;
Lachaud, S ;
Laurin, P ;
Le Martret, O ;
Loyau, V ;
Tessot, N .
JOURNAL OF MEDICINAL CHEMISTRY, 1998, 41 (21) :4080-4100
[2]   The complete atomic structure of the large ribosomal subunit at 2.4 Å resolution [J].
Ban, N ;
Nissen, P ;
Hansen, J ;
Moore, PB ;
Steitz, TA .
SCIENCE, 2000, 289 (5481) :905-920
[3]   Structural basis of the ribosomal machinery for peptide bond formation, translocation, and nascent chain progression [J].
Bashan, A ;
Agmon, I ;
Zarivach, R ;
Schluenzen, F ;
Harms, J ;
Berisio, R ;
Bartels, H ;
Franceschi, F ;
Auerbach, T ;
Hansen, HAS ;
Kossoy, E ;
Kessler, M ;
Yonath, A .
MOLECULAR CELL, 2003, 11 (01) :91-102
[4]   Structural insight into the antibiotic action of telithromycin against resistant mutants [J].
Berisio, R ;
Harms, J ;
Schluenzen, F ;
Zarivach, R ;
Hansen, HAS ;
Fucini, P ;
Yonath, A .
JOURNAL OF BACTERIOLOGY, 2003, 185 (14) :4276-4279
[5]  
Brunger AT, 1998, ACTA CRYSTALLOGR D, V54, P905, DOI 10.1107/s0907444998003254
[6]   Ribbons [J].
Carson, M .
MACROMOLECULAR CRYSTALLOGRAPHY, PT B, 1997, 277 :493-505
[7]   RIBOSOMAL-PROTEIN GENE SEQUENCE CHANGES IN ERYTHROMYCIN-RESISTANT MUTANTS OF ESCHERICHIA-COLI [J].
CHITTUM, HS ;
CHAMPNEY, WS .
JOURNAL OF BACTERIOLOGY, 1994, 176 (20) :6192-6198
[8]   In vitro selection of resistance in Haemophilus influenzae by amoxicillin-clavulanate, cefpodoxime, cefprozil, azithromycin, and clarithromycin [J].
Clark, C ;
Bozdogan, B ;
Peric, M ;
Dewasse, B ;
Jacobs, MR ;
Appelbaum, PC .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2002, 46 (09) :2956-2962
[9]   INVITRO BINDING OF VIRGINIAMYCIN-M TO BACTERIAL-RIBOSOMES AND RIBOSOMAL-SUBUNITS [J].
COCITO, C ;
DIGIAMBATTISTA, M .
MOLECULAR & GENERAL GENETICS, 1978, 166 (01) :53-59