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Published on: April 8, 2016
Dynamic Motion and Communication in the Streptococcal C1 Phage Lysin, PlyC
Blake T Riley1, Sebastian S Broendum1, Cyril F Reboul2
1Biomedicine Discovery Institute and Department of Biochemistry and Molecular Biology, Monash University, Clayton, Australia.
Abstract:
The growing problem of antibiotic resistance underlies the critical need to develop new treatments to prevent and control resistant bacterial infection. Exogenous application of bacteriophage lysins results in rapid and specific destruction of Gram-positive bacteria and therefore lysins represent novel antibacterial agents. The PlyC phage lysin is the most potent lysin characterized to date and can rapidly lyse Group A, C and E streptococci. Previously, we have determined the X-ray crystal structure of PlyC, revealing a complicated and unique arrangement of nine proteins. The scaffold features a multimeric cell-wall docking assembly bound to two catalytic domains that communicate and work synergistically. However, the crystal structure appeared to be auto-inhibited and raised important questions as to the mechanism underlying its extreme potency. Here we use small angle X-ray scattering (SAXS) and reveal that the conformational ensemble of PlyC in solution is different to that in the crystal structure. We also investigated the flexibility of the enzyme using both normal mode (NM) analysis and molecular dynamics (MD) simulations. Consistent with our SAXS data, MD simulations show rotational dynamics of both catalytic domains, and implicate inter-domain communication in achieving a substrate-ready conformation required for enzyme function. Our studies therefore provide insights into how the domains in the PlyC holoenzyme may act together to achieve its extraordinary potency.
Insights
Antibiotic resistance necessitates new treatments. Bacteriophage lysins, like the potent PlyC enzyme, rapidly destroy bacteria. This study reveals PlyC’s solution structure and dynamics, explaining its high antibacterial potency.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Antibiotic resistance is a critical global health threat, demanding novel antibacterial strategies.
- Bacteriophage lysins are enzymes that rapidly lyse Gram-positive bacteria, offering a promising alternative to antibiotics.
- The PlyC lysin is exceptionally potent against streptococci, but its mechanism of action remains unclear.
Purpose of the Study:
- To elucidate the solution structure and dynamics of the PlyC holoenzyme.
- To understand the mechanism underlying PlyC's extreme antibacterial potency.
- To investigate the relationship between PlyC's structure, dynamics, and function.
Main Methods:
- Small-angle X-ray scattering (SAXS) to determine solution structure.
- Normal mode (NM) analysis and molecular dynamics (MD) simulations to investigate enzyme flexibility.
- Comparison of solution structure with previously determined crystal structure.
Main Results:
- The solution conformation of PlyC differs significantly from its crystal structure.
- MD simulations reveal rotational dynamics in PlyC's catalytic domains.
- Inter-domain communication is implicated in achieving the active conformation for enzymatic function.
Conclusions:
- PlyC exhibits distinct conformational dynamics in solution compared to its crystal state.
- Enzyme flexibility and inter-domain communication are crucial for PlyC's potent antibacterial activity.
- These findings provide mechanistic insights into the extraordinary efficacy of PlyC as an antibacterial agent.
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