Structural comparison of substrate-binding pockets of serine β-lactamases in classes A, C, and D

被引:0
|
作者
Lee, Hyeonmin [1 ]
Park, Hyunjae [1 ]
Kwak, Kiwoong [1 ]
Lee, Chae-eun [1 ]
Yun, Jiwon [1 ]
Lee, Donghyun [1 ]
Lee, Jung Hun [2 ]
Lee, Sang Hee [2 ]
Kang, Lin-Woo [1 ]
机构
[1] Konkuk Univ, Dept Biol Sci, Seoul, South Korea
[2] Myongji Univ, Dept Biol Sci, Natl Leading Res Lab Drug Resistance Prote, Yongin, South Korea
基金
新加坡国家研究基金会;
关键词
serine beta-lactamase (SBL); beta-lactams; substrate spectrum; antibiotic resistance; substrate-binding pocket (SBP); TRANSITION-STATE ANALOG; STRUCTURE-BASED DESIGN; CLASS-A CARBAPENEMASE; EXTENDED-SPECTRUM CEPHALOSPORINS; ULTRAHIGH-RESOLUTION STRUCTURE; AMINO-ACID INSERTION; CRYSTAL-STRUCTURE; ANTIBIOTIC-RESISTANCE; ESCHERICHIA-COLI; ACTIVE-SITE;
D O I
10.1080/14756366.2024.2435365
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
beta-lactams have been the most successful antibiotics, but the rise of multi-drug resistant (MDR) bacteria threatens their effectiveness. Serine beta-lactamases (SBLs), among the most common causes of resistance, are classified as A, C, and D, with numerous variants complicating structural and substrate spectrum comparisons. This study compares representative SBLs of these classes, focusing on the substrate-binding pocket (SBP). SBP is kidney bean-shaped on the indented surface, formed mainly by loops L1, L2, and L3, and an additional loop Lc in class C. beta-lactams bind in a conserved orientation, with the beta-lactam ring towards L2 and additional rings towards the space between L1 and L3. Structural comparison shows each class has distinct SBP structures, but subclasses share a conserved scaffold. The SBP structure, accommodating complimentary beta-lactams, determines the substrate spectrum of SBLs. The systematic comparison of SBLs, including structural compatibility between beta-lactams and SBPs, will help understand their substrate spectrum.
引用
收藏
页数:19
相关论文
共 41 条
  • [21] Improving the Cβ Stereoselectivity of L-Threonine Aldolase for the Synthesis of L-threo-4-Methylsulfonylphenylserine by Modulating the Substrate-Binding Pocket To Control the Orientation of the Substrate Entrance
    Wang, Lichao
    Xu, Lian
    Su, Bingmei
    Lin, Wei
    Xu, Xinqi
    Lin, Juan
    CHEMISTRY-A EUROPEAN JOURNAL, 2021, 27 (37) : 9654 - 9660
  • [22] Substrate-binding guides individual melibiose permeases MelB to structurally soften and to destabilize cytoplasmic middle-loop C3
    Blaimschein, Nina
    Hariharan, Parameswaran
    Manioglu, Selen
    Guan, Lan
    Muller, Daniel J.
    STRUCTURE, 2023, 31 (01) : 58 - +
  • [23] Structural analysis of the LDL receptor-interacting FERM domain in the E3 ubiquitin ligase IDOL reveals an obscured substrate-binding site
    Martinelli, Luca
    Adamopoulos, Athanassios
    Johansson, Patrik
    Wan, Paul T.
    Gunnarsson, Jenny
    Guo, Hongwei
    Boyd, Helen
    Zelcer, Noam
    Sixma, Titia K.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2020, 295 (39) : 13570 - 13583
  • [24] Structure and in silico substrate-binding mode of ADP-L-glycero-D-manno-heptose 6-epimerase from Burkholderia thailandensis
    Kim, Mi-Sun
    Lim, Areum
    Yang, Seung Won
    Park, Jimin
    Lee, Daeun
    Shin, Dong Hae
    ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2013, 69 : 658 - 668
  • [25] Structural and biochemical insights into the substrate-binding mechanism of a glycoside hydrolase family 12 β-1,3-1,4-glucanase from Chaetomium sp.
    Ma, Junwen
    Li, Yanxiao
    Han, Susu
    Jiang, Zhengqiang
    Yan, Qiaojuan
    Yang, Shaoqing
    JOURNAL OF STRUCTURAL BIOLOGY, 2021, 213 (03)
  • [26] An Extended β7α7 Substrate-Binding Loop Is Essential for Efficient Catalysis by 3-Deoxy-D-manno-Octulosonate 8-Phosphate Synthase
    Allison, Timothy M.
    Hutton, Richard D.
    Jiao, Wanting
    Gloyne, Benjamin J.
    Nimmo, Evan B.
    Jameson, Geoffrey B.
    Parker, Emily J.
    BIOCHEMISTRY, 2011, 50 (43) : 9318 - 9327
  • [27] Structural basis for the extended substrate spectrum of AmpC BER and structure-guided discovery of the inhibition activity of citrate against the class C β-lactamases AmpC BER and CMY-10
    Na, Jung-Hyun
    Cha, Sun-Shin
    ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2016, 72 : 976 - 985
  • [28] Structural and mutational analyses of the receptor binding domain of botulinum D/C mosaic neurotoxin: Insight into the ganglioside binding mechanism
    Nuemket, Nipawan
    Tanaka, Yoshikazu
    Tsukamoto, Kentaro
    Tsuji, Takao
    Nakamura, Keiji
    Kozaki, Shunji
    Yao, Min
    Tanaka, Isao
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2011, 411 (02) : 433 - 439
  • [29] Structural Analysis of Inhibitor Binding to Enterovirus-D68 3C Protease
    Azzolino, Vincent N.
    Shaqra, Ala M.
    Ali, Akbar
    Kurt Yilmaz, Nese
    Schiffer, Celia A.
    VIRUSES-BASEL, 2025, 17 (01):
  • [30] Structural and Functional Analysis of Cyclin D1 Reveals p27 and Substrate Inhibitor Binding Requirements
    Liu, Shu
    Bolger, Joshua K.
    Kirkland, Lindsay O.
    Premnath, Padmavathy N.
    McInnes, Campbell
    ACS CHEMICAL BIOLOGY, 2010, 5 (12) : 1169 - 1182