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Published on: November 1, 2024
Substrate Specificity and Immunological Implications of Cutibacterium acnes Phage Endolysins
Hafiza Hira Bashir1, Muhammad Adeel Hasnain2, Gi-Seong Moon1,2,3
1Major in Biotechnology, Korea National University of Transportation, Jeungpyeong 27909, Republic of Korea.
Abstract:
Cutibacterium acnes resistance to antibiotics poses a significant challenge in treating acne vulgaris. Bacteriophages offer a promising alternative to overcome this challenge given their specificity. In the current study, 15 bacteriophages were isolated from acne affected volunteers and subjected to whole genome sequencing to characterize their genetic features, diversity and endolysins encoding genes for further structural and functional analysis. Five representative endolysins (CAP 1-1, 6-3, 7-1, 10-3, and 12-3) were chosen for structural and functional analysis after average nucleotide identity (ANI) analysis where 5 different endolysins were categorized. Furthermore, molecular docking studies assessed the binding affinities of endolysins to common peptidoglycan fragments of C. acnes cell wall, identifying variations in the binding interactions as CAP 6-3, 7-1, and 12-3 had greater affinities for the NAG-NAM dimer, while CAP 1-1 and CAP 10-3 interacted preferentially with NAM-L-alanyl-D-isoglutamine (MDP). Residue-level interaction mapping revealed several conserved histidine residues; ASP170 is conserved in peptide-targeting endolysins. These results imply that C. acnes phage (CAP) endolysins may be functionally differentiated into peptide-targeting and glycan-targeting classes based on their substrate-binding preferences, in addition to the traditional classification of endolysins by bond-cleaving activity. Notably, by interfering with NOD2-mediated signaling, MDP binding may increase the potential for modifying host immunological responses. Together, this research offers novel molecular understandings of the substrate selectivity and possible immunomodulatory functions of CAP phage endolysins. These results provide computational insights into substrate specificity and potential immunomodulatory mechanisms of C. acnes phage endolysins therefore experimental validation is necessary to verify their biological and therapeutic significance.
Insights
Bacteriophages targeting Cutibacterium acnes show promise against antibiotic resistance. Their endolysins exhibit distinct binding preferences, suggesting potential for new acne vulgaris treatments and immunomodulation.
Area of Science:
- Microbiology
- Biochemistry
- Computational Biology
Background:
- Antibiotic resistance in Cutibacterium acnes complicates acne vulgaris treatment.
- Bacteriophages and their endolysins present a specific and promising alternative therapy.
Purpose of the Study:
- To genetically characterize bacteriophages isolated from acne patients.
- To analyze the structural and functional properties of bacteriophage endolysins targeting C. acnes.
- To investigate the substrate specificity and potential immunomodulatory roles of these endolysins.
Main Methods:
- Whole genome sequencing of 15 bacteriophages.
- Average nucleotide identity (ANI) analysis for endolysin categorization.
- Molecular docking to assess endolysin binding affinities to C. acnes peptidoglycan fragments.
- Residue-level interaction mapping.
Main Results:
- Five representative endolysins (CAP 1-1, 6-3, 7-1, 10-3, 12-3) were identified and analyzed.
- Endolysins showed differential binding: CAP 6-3, 7-1, 12-3 preferred NAG-NAM dimers, while CAP 1-1, 10-3 preferred MDP.
- Conserved residues like ASP170 were identified, suggesting functional differentiation into peptide- and glycan-targeting classes.
Conclusions:
- C. acnes phage (CAP) endolysins can be functionally classified by substrate preference beyond bond-cleaving activity.
- Specific endolysin-substrate interactions, particularly MDP binding, may modulate host immune responses via NOD2 signaling.
- These findings provide computational insights into endolysin specificity and immunomodulatory potential, warranting experimental validation for therapeutic applications.
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