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Published on: September 8, 2021
Design and Selection of Engineered Lytic Proteins With Staphylococcus aureus Decolonizing Activity
Diana Gutiérrez1,2,3, Lorena Rodríguez-Rubio4, Patricia Ruas-Madiedo1,2
1Instituto de Productos Lácteos de Asturias (IPLA-CSIC), Asturias, Spain.
Abstract:
Staphylococcus aureus causes various infections in humans and animals, the skin being the principal reservoir of this pathogen. The widespread occurrence of methicillin-resistant S. aureus (MRSA) limits the elimination and treatment of this pathogen. Phage lytic proteins have been proven as efficient antimicrobials against S. aureus. Here, a set of 12 engineered proteins based on endolysins were conceptualized to select the most optimal following a stepwise funnel approach assessing parameters including turbidity reduction, minimum inhibitory concentration (MIC), time-kill curves, and antibiofilm assays, as well as testing their stability in a broad range of storage conditions (pH, temperature, and ionic strength). The engineered phage lysins LysRODIΔAmi and ClyRODI-H5 showed the highest specific lytic activity (5 to 50 times higher than the rest), exhibited a shelf-life up to 6 months and remained stable at temperatures up to 50°C and in a pH range from 3 to 9. LysRODIΔAmi showed the lower MIC values against all staphylococcal strains tested. Both proteins were able to kill 6 log units of the strain S. aureus Sa9 within 5 min and could remove preformed biofilms (76 and 65%, respectively). Moreover, LysRODIΔAmi could prevent biofilm formation at low protein concentrations (0.15-0.6 μM). Due to its enhanced antibiofilm properties, LysRODIΔAmi was selected to effectively remove S. aureus contamination in both intact and disrupted keratinocyte monolayers. Notably, this protein did not demonstrate any toxicity toward human keratinocytes, even at high concentrations (22.1 μM). Finally, a pig skin ex vivo model was used to evaluate treatment of artificially contaminated pig skin using LysRODIΔAmi (16.5 μg/cm2). Following an early reduction of S. aureus, a second dose of protein completely eradicated S. aureus. Overall, our results suggest that LysRODIΔAmi is a suitable candidate as antimicrobial agent to prevent and treat staphylococcal skin infections.
Insights
Engineered phage lysins LysRODIΔAmi and ClyRODI-H5 show high efficacy against Staphylococcus aureus. LysRODIΔAmi effectively eradicates S. aureus from skin models and shows no toxicity, indicating potential for treating skin infections.
Area of Science:
- Microbiology
- Biotechnology
- Protein Engineering
Background:
- Staphylococcus aureus is a major cause of human and animal infections.
- Methicillin-resistant S. aureus (MRSA) poses significant treatment challenges.
- Bacteriophage-derived lytic proteins offer a promising antimicrobial strategy.
Purpose of the Study:
- To engineer and select optimal endolysin-based phage proteins against S. aureus.
- To evaluate the efficacy, stability, and safety of selected candidates.
- To assess the potential of LysRODIΔAmi for treating S. aureus skin infections.
Main Methods:
- Conceptualization and engineering of 12 endolysin-based proteins.
- Stepwise evaluation including turbidity reduction, MIC, time-kill assays, and antibiofilm assays.
- Stability testing across various pH, temperature, and ionic strength conditions.
- In vitro testing on keratinocyte monolayers and ex vivo pig skin models.
Main Results:
- LysRODIΔAmi and ClyRODI-H5 exhibited 5-50x higher lytic activity than other engineered proteins.
- Both proteins demonstrated stability for up to 6 months, up to 50°C, and pH 3-9.
- LysRODIΔAmi showed lower MIC values, rapid killing of S. aureus (6 log units in 5 min), and significant biofilm removal (76%).
- LysRODIΔAmi prevented biofilm formation and demonstrated no toxicity to human keratinocytes.
- Ex vivo pig skin model showed complete S. aureus eradication after two LysRODIΔAmi treatments.
Conclusions:
- LysRODIΔAmi and ClyRODI-H5 are highly effective engineered phage lysins against S. aureus.
- LysRODIΔAmi exhibits excellent stability, potent antimicrobial and antibiofilm activity, and a favorable safety profile.
- LysRODIΔAmi is a promising candidate for preventing and treating S. aureus skin infections.
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