Biofilms are an emerging target for new therapeutics in the effort to address the continued increase in resistance and tolerance to traditional antimicrobials. In particular, the distinct nature of the biofilm growth state often means that traditional antimcirobials, developed to combat planktonic cells, are ineffective. Biofilm treatments are designed to both reduce pathogen load at an infection site and decrease the development of resistance by rendering the embedded organisms more susceptible to treatment at lower antimicrobial concentrations. In this work, we developed a new antimicrobial treatment modality using engineered lactic acid bacteria (LAB). We first characterized the natural capacity of two lactobacilli, L. plantarum and L. rhamnosus, to inhibit P. aeruginosa growth, biofilm formation, and biofilm viability, which we found to be dependent upon the low pH generated during culture of the LAB. We further engineered these LAB to secrete enzymes known to degrade P. aeruginosa biofilms and show that our best performing engineered LAB, secreting a pathogen-derived enzyme (PelA), degrades up to 85% of P. aeruginosa biofilm.
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http://dx.doi.org/10.1038/s41522-020-00156-6 | DOI Listing |
Trop Doct
January 2025
Junior Resident, Department of General Medicine, Silchar Medical College and Hospital, Assam, India.
Chronic mesh infections after inguinal hernia repair present significant clinical challenges due to biofilm-mediated resistance, involvement of multidrug-resistant and atypical pathogens, and gaps in preventive strategies. Our case series of four patients highlights critical research gaps, including the overlooked role of atypical pathogens such as , diagnostic challenges in detecting slow-growing or resistant organisms and perioperative sterilisation lapses, especially inconsistent Glutaraldehyde use during late-day operations. Many patients suffered with persistent sinuses and recurrent hernias months after surgery.
View Article and Find Full Text PDFCell Mol Biol (Noisy-le-grand)
January 2025
Department Medical Laboratory Technology, College of Medical Technology, University of Al-Farahidi, Baghdad, Iraq.
Int J Mol Sci
January 2025
Department of Microbiology, Biotechnical Faculty, University of Ljubljana, 1000 Ljubljana, Slovenia.
The widespread use of disinfectants and antiseptics has led to the emergence of nosocomial pathogens that are less sensitive to these agents, which in combination with multidrug resistance (MDR) can pose a significant epidemiologic risk. We investigated the susceptibility of nosocomial , , , and to a 0.05% chlorhexidine (CHX) solution and a biocidal S7 composite solution based on CHX (0.
View Article and Find Full Text PDFPolymers (Basel)
December 2024
School of Chemistry and Chemical Engineering, Tianjin University of Technology, 391 Binshuixidao, Tianjin 300384, China.
Catheter-associated urinary tract infection (CAUTI) induced by rapid bacterial colonization and biofilm formation on urinary catheters is a key issue that urgently needs to be addressed. To prevent CAUTI, many contact-killing, non-leaching coatings have been developed for the surfaces of silicone catheters. However, due to the chemical inertness of the silicone substrate, most current coatings lack adhesion and are unstable under external forces.
View Article and Find Full Text PDFWorld J Microbiol Biotechnol
January 2025
Department of Chemistry, Tripura University, Suryamaninagar, Tripura, 799022, India.
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