Mycofilms Support Colonization and Enhances Miconazole Resistance in Dual-Species Interactions.

Front Microbiol

Oral Sciences Research Group, Glasgow Dental School - School of Medicine, Dentistry and Nursing, College of Medical, Veterinary and Life Sciences, University of Glasgow Glasgow, UK.

Published: February 2017

Polymicrobial inter-kingdom biofilm infections represent a clinical management conundrum. The presence of co-isolation of bacteria and fungi complicates the ability to routinely administer single antimicrobial regimens, and synergy between the microorganisms influences infection severity. We therefore investigated the nosocomial pathogens and with respect to antimicrobial intervention. We characterized the interaction using biofilm assays and evaluated the effect of miconazole treatment using and assays. Finally, we assessed the impact of biofilm extracellular matrix (ECM) on these interactions. Data indicated that the mycofilms supported adhesion and colonization by through close interactions with hyphal elements, significantly increasing biofilm formation throughout biofilm maturation. Miconazole sensitivity was shown to be reduced in both mono- and dual-species biofilms compared to planktonic cells. Within a three-dimensional biofilm model sensitivity was also hindered. survival analysis showed both enhanced pathogenicity of the dual-species infection, which was concomitantly desensitized to miconazole treatment. Analysis of the ECM revealed the importance of extracellular DNA, which supported the adhesion of and the development of the dual-species biofilm structures. Collectively, these data highlight the clinical importance of dual-species inter-kingdom biofilm infections, though also provides translational opportunities to manage them more effectively.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5322193PMC
http://dx.doi.org/10.3389/fmicb.2017.00258DOI Listing

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