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Published on: February 1, 2018
Structural and functional characterization of an active site-influencing variant (IMP-1-F218Y) in IMP-1
Subhecchha Baidya1, Kunal Dhankhar1,2, Riya Karan1
1Department of Biosciences and Bioengineering, Indian Institute of Technology, Roorkee, Haridwar, Uttarakhand, India.
Abstract:
Antimicrobial resistance (AMR) has become a critical global health challenge, largely driven by metallo-β-lactamase (MBL)-mediated hydrolysis of β-lactam antibiotics, which remain the cornerstone of modern antimicrobial therapy. IMP-1, an MBL first identified in Japan, exhibits potent carbapenemase activity and currently lacks effective clinical inhibitors. To explore how distal mutations modulate catalytic behaviour in B1 MBLs, we characterised IMP-1 and its variant IMP-1-F218Y, using biophysical, biochemical, and structural approaches. Circular-dichroism spectra confirmed the preservation of the α-helical MBL fold in both enzymes, while kinetic analyses revealed enhanced hydrolysis by IMP-1-F218Y across most β-lactam substrates. Antimicrobial susceptibility-testing supported this observation, linking the increased catalytic efficiency of the mutant to elevated resistance, except under Zinc(II)-limiting conditions. The crystal structure of IMP-1-F218Y (2.9 Å; PDB ID: 8ZTB) showed an additional Y218-S262 hydrogen bond that reduces the active-site volume and stabilises the L3 loop, positioning W64 flatter across the catalytic cleft. Molecular-dynamics simulations captured this conformational compaction, indicating a more compact and catalytically favourable active site. Unlike natural IMP variants with selective substrate profiles, IMP-1-F218Y displayed an expanded substrate spectrum, demonstrating that a single distal substitution can modulate enzymatic plasticity and broaden catalytic range. These findings provide mechanistic insight into the structural adaptability of B1 MBLs and emphasise the importance of targeting such flexibility in the design of next-generation β-lactamase inhibitors.
Insights
A single mutation in the IMP-1 metallo-β-lactamase (MBL) enzyme enhances its activity against antibiotics, increasing antimicrobial resistance (AMR). This discovery offers insights into MBL adaptability and inhibitor design.
Area of Science:
- Biochemistry
- Structural Biology
- Microbiology
Background:
- Antimicrobial resistance (AMR) is a major global health threat, driven by enzymes like metallo-β-lactamases (MBLs) that degrade antibiotics.
- IMP-1 is a potent MBL lacking effective inhibitors, necessitating research into its catalytic mechanisms.
Purpose of the Study:
- To investigate how distal mutations affect the catalytic activity of B1 MBLs.
- To characterize the IMP-1-F218Y variant and understand its impact on antibiotic resistance.
Main Methods:
- Biophysical (circular dichroism) and biochemical (kinetic analyses) characterization.
- Antimicrobial susceptibility testing.
- X-ray crystallography and molecular dynamics simulations.
Main Results:
- The IMP-1-F218Y variant showed enhanced hydrolysis of most β-lactam substrates, increasing resistance.
- Structural analysis revealed a stabilizing Y218-S262 hydrogen bond, reducing active-site volume.
- Molecular dynamics simulations confirmed a more compact and catalytically favorable active site in the mutant.
Conclusions:
- A single distal mutation can significantly alter MBL enzymatic plasticity and broaden substrate range.
- Understanding MBL structural adaptability is crucial for designing next-generation inhibitors.
- Targeting MBL flexibility may offer new strategies against antimicrobial resistance.
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