Structural basis for cross-resistance to ribosomal PTC antibiotics

被引:40
|
作者
Davidovich, Chen [1 ]
Bashan, Anat [1 ]
Yonath, Ada [1 ]
机构
[1] Weizmann Inst Sci, Dept Biol Struct, IL-76100 Rehovot, Israel
基金
美国国家卫生研究院;
关键词
peptidyl transferase center; chloramphenicol; linezolid pleuromutilins; streptogramins(A);
D O I
10.1073/pnas.0810826105
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Clinically relevant antibiotics that target the ribosomal peptidyl transferase center (PTC), a highly conserved ribosomal region, exert their inhibitory action by exploiting the flexibility of PTC nucleotides, which trigger modulations of the shape of the antibiotic binding pocket. Resistance to these antibiotics was observed clinically and in vitro. Based on the crystal structures of the large ribosomal subunit from eubacterium suitable to represent pathogens in complex with these antibiotics, it was found that all nucleotides mediating resistance to PTC antibiotics cluster on one side of the PTC. Over half of the nucleotides affecting resistance reside in regions of lower sequence conservation, and are too distal to make Van der Waals interactions with the bound drugs. Alterations of the identity of these nucleotides may not lethally affect ribosome function, but can hamper antibiotic binding through changes in the conformation and flexibility of specific PTC nucleotides. Comparative analysis revealed properties likely to lead to cross-resistance and enabled their parameterization. As the same nucleotides are frequently involved in resistance to more than a single family of antibiotics, the common pattern explains medically observed cross-resistance to PTC antibiotics and suggests the potential for a wider clinical threat.
引用
收藏
页码:20665 / 20670
页数:6
相关论文
共 50 条
  • [31] Molecular basis of Cyperus difformis cross-resistance to ALS-inhibiting herbicides
    Ntoanidou, S.
    Kaloumenos, N.
    Diamantidis, G.
    Madesis, P.
    Eleftherohorinos, I.
    PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY, 2016, 127 : 38 - 45
  • [32] Chlorine Tolerance and Cross-Resistance to Antibiotics in Poultry-Associated Salmonella Isolates in China
    Xiao, Xingning
    Bai, Li
    Wang, Sheng
    Liu, Lisha
    Qu, Xiaoyun
    Zhang, Jianmin
    Xiao, Yingping
    Tang, Biao
    Li, Yanbin
    Yang, Hua
    Wang, Wen
    FRONTIERS IN MICROBIOLOGY, 2022, 12
  • [33] SUSCEPTIBILITY AND CROSS-RESISTANCE OF BACTERIA TO 4 RELATED ANTIBIOTICS - KANAMYCIN, PAROMOMYCIN, NEOMYCIN AND STREPTOMYCIN
    KUNIN, CM
    WILCOX, C
    NAJARIAN, A
    FINLAND, M
    PROCEEDINGS OF THE SOCIETY FOR EXPERIMENTAL BIOLOGY AND MEDICINE, 1958, 99 (02): : 312 - 316
  • [34] Adaptive Cross-Resistance to Aminoglycoside Antibiotics in Pseudomonas aeruginosa Induced by Topical Dosage of Neomycin
    Uemura, Shuji
    Yokota, Shin-ichi
    Shiraishi, Tsukasa
    Kitagawa, Manabu
    Hirayama, Suguru
    Kyan, Ryoko
    Mizuno, Hirotoshi
    Sawamoto, Keigo
    Inoue, Hiroyuki
    Miyamoto, Atsushi
    Narimatsu, Eichi
    CHEMOTHERAPY, 2017, 62 (02) : 121 - 127
  • [35] QUINOLONE UREIDOPENICILLIN CROSS-RESISTANCE
    PIDDOCK, LJV
    WIJNANDS, WJA
    WISE, R
    LANCET, 1987, 2 (8564): : 907 - 907
  • [36] CROSS-RESISTANCE TO CARDIOTOXIC AGENTS
    SELYE, H
    STREBEL, R
    BAJUSZ, E
    CANADIAN JOURNAL OF BIOCHEMISTRY AND PHYSIOLOGY, 1961, 39 (03): : 519 - +
  • [37] Update on cross-resistance of fluoroquinolones
    Garau, J
    INTERNATIONAL JOURNAL OF CLINICAL PRACTICE, 2000, : 94 - 98
  • [38] Genetic basis of resistance and studies on cross-resistance in a population of diamondback moth, Plutella xylostella (Lepidoptera: Plutellidae)
    Liang, P
    Gao, XW
    Zheng, BZ
    PEST MANAGEMENT SCIENCE, 2003, 59 (11) : 1232 - 1236
  • [39] Associative cross-resistance by linkage of resistance genes
    不详
    GENES & GENETIC SYSTEMS, 2005, 80 (06) : 448 - 448
  • [40] INSECTICIDE RESISTANCE AND CROSS-RESISTANCE IN AEDES NIGROMACULIS
    SCHAEFER, CH
    WILDER, WH
    JOURNAL OF ECONOMIC ENTOMOLOGY, 1970, 63 (04) : 1224 - &