Abstract
Prevalent bacterial colonization and subsequent biofilm formation in biomedical implants demand for improved antimicrobial properties of these devices. To address this problem, immobilizing antimicrobial peptides (AMPs) on implants is a promising solution because of their biocompatibility and lesser likelihood to incur pathogen resistance. This study presents a systematic approach towards evaluating the feasibility of Lasioglossin-III (Lasio-III) (a new bee venom AMP, found in Lasioglossum laticeps) to be tethered onto biodevices. Antimicrobial characterization of Lasio-III in solution confirms the peptide's membranolytic mode of action and its salt-resistant, broad antimicrobial spectrum activity and anti-biofilm properties against Gram negative and Gram positive bacteria. Lassio-III was covalently immobilized on silicon surfaces using APTES and PEG spacers of varying lengths. Surface characterization of the AMP-immobilized silicon was done using water contact angle measurements, XPS analysis and ellipsometry. Even at modest surface peptide concentrations of ∼180 ng cm-2, Lassio-III showed antibacterial activities which were further enhanced with increasing PEG spacer lengths, as determined by live CFU counting and ATP leakage experiments. This proof-of-concept study demonstrates the potential of Lasio-III as an antimicrobial coating candidate. © 2013 The Royal Society of Chemistry.
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CITATION STYLE
Mishra, B., Basu, A., Saravanan, R., Xiang, L., Yang, L. K., & Leong, S. S. J. (2013). Lasioglossin-III: Antimicrobial characterization and feasibility study for immobilization applications. RSC Advances, 3(24), 9534–9543. https://doi.org/10.1039/c3ra40887f
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