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1.
J Nanobiotechnology ; 14: 29, 2016 Apr 18.
Article in English | MEDLINE | ID: mdl-27090889

ABSTRACT

BACKGROUND: The Institute of Theoretical and Experimental Biophysics in Moscow recently developed a new nanoaerosol generator. This study evaluated this novel technology, which has the potential to enhance therapeutic delivery, with the goal of using the generator to treat pulmonary Francisella tularensis subsp. novicida (F. novicida) infections in BALB/c mice. RESULTS: First, the analysis of quantum dots distribution in cryosections of murine lungs demonstrated that nanoaerosols penetrate the alveoli and spread more homogenously in the lungs than upon intranasal delivery. Second, the generator was used to aerosolize the antibiotic levofloxacin to determine the effectiveness of nanoaerosolized levofloxacin as treatment against F. novicida. The generator was capable of delivering a sufficient dose of nanoaerosolized liposome-encapsulated levofloxacin to rescue mice against 100LD50 of F. novicida. CONCLUSIONS: The nanoaerosol-delivered dosage of liposome-encapsulated levofloxacin required to rescue mice is approximately 94× lower than the oral required dose and approximately 8× lower than the intraperitoneal dose required for rescue. In addition, treatment with nanoaerosols consumes less total volume of therapeutic solutions and is gentler on sprayed material than the aerosolization by a conventional three-jet Collison nebulizer as seen by the preservation of liposomes. This could represent a significant advance for the use of expensive therapeutics and lung directed therapies.


Subject(s)
Aerosols/administration & dosage , Anti-Bacterial Agents/administration & dosage , Francisella tularensis/drug effects , Levofloxacin/administration & dosage , Liposomes/administration & dosage , Nanoparticles/administration & dosage , Tularemia/drug therapy , Animals , Lung/microbiology , Mice , Mice, Inbred BALB C
2.
PLoS One ; 9(3): e93119, 2014.
Article in English | MEDLINE | ID: mdl-24664176

ABSTRACT

Biofilms, multicellular communities of bacteria, may be an environmental survival and transmission mechanism of Francisella tularensis. Chitinases of F. tularensis ssp. novicida (Fn) have been suggested to regulate biofilm formation on chitin surfaces. However, the underlying mechanisms of how chitinases may regulate biofilm formation are not fully determined. We hypothesized that Fn chitinase modulates bacterial surface properties resulting in the alteration of biofilm formation. We analyzed biofilm formation under diverse conditions using chitinase mutants and their counterpart parental strain. Substratum surface charges affected biofilm formation and initial attachments. Biophysical analysis of bacterial surfaces confirmed that the chi mutants had a net negative-charge. Lectin binding assays suggest that chitinase cleavage of its substrates could have exposed the concanavalin A-binding epitope. Fn biofilm was sensitive to chitinase, proteinase and DNase, suggesting that Fn biofilm contains exopolysaccharides, proteins and extracellular DNA. Exogenous chitinase increased the drug susceptibility of Fn biofilms to gentamicin while decreasing the amount of biofilm. In addition, chitinase modulated bacterial adhesion and invasion of A549 and J774A.1 cells as well as intracellular bacterial replication. Our results support a key role of the chitinase(s) in biofilm formation through modulation of the bacterial surface properties. Our findings position chitinase as a potential anti-biofilm enzyme in Francisella species.


Subject(s)
Bacterial Proteins/metabolism , Biofilms/growth & development , Chitinases/metabolism , Francisella/physiology , Mutation , Anti-Bacterial Agents/pharmacology , Bacterial Adhesion/drug effects , Bacterial Adhesion/physiology , Bacterial Proteins/genetics , Biofilms/drug effects , Cell Line , Chitinases/genetics , Gentamicins/pharmacology , Humans
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