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      Growth conditions and environmental factors impact aerosolization but not virulence of Francisella tularensis infection in mice

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          Abstract

          In refining methodology to develop a mouse model for inhalation of Francisella tularensis, it was noted that both relative humidity and growth media impacted the aerosol concentration of the live vaccine strain (LVS) of F. tularensis. A relative humidity of less than 55% had a negative impact on the spray factor, the ratio between the concentration of LVS in the aerosol and the nebulizer. The spray factor was significantly higher for LVS grown in brain heart infusion (BHI) broth than LVS grown in Mueller–Hinton broth (MHb) or Chamberlain's chemically defined medium (CCDM). The variability between aerosol exposures was also considerably less with BHI. LVS grown in BHI survived desiccation far longer than MHb-grown or CCDM-grown LVS (~70% at 20 min for BHI compared to <50% for MHb and CCDM). Removal of the capsule by hypertonic treatment impacted the spray factor for CCDM-grown LVS or MHb-grown LVS but not BHI-grown LVS, suggesting the choice of culture media altered the adherence of the capsule to the cell membrane. The choice of growth media did not impact the LD 50 of LVS but the LD 99 of BHI-grown LVS was 1 log lower than that for MHb-grown LVS or CCDM-grown LVS. Splenomegaly was prominent in mice that succumbed to MHb- and BHI-grown LVS but not CCDM-grown LVS. Environmental factors and growth conditions should be evaluated when developing new animal models for aerosol infection, particularly for vegetative bacterial pathogens.

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          Tularemia.

          Francisella tularensis is the etiological agent of tularemia, a serious and occasionally fatal disease of humans and animals. In humans, ulceroglandular tularemia is the most common form of the disease and is usually a consequence of a bite from an arthropod vector which has previously fed on an infected animal. The pneumonic form of the disease occurs rarely but is the likely form of the disease should this bacterium be used as a bioterrorism agent. The diagnosis of disease is not straightforward. F. tularensis is difficult to culture, and the handling of this bacterium poses a significant risk of infection to laboratory personnel. Enzyme-linked immunosorbent assay- and PCR-based methods have been used to detect bacteria in clinical samples, but these methods have not been adequately evaluated for the diagnosis of pneumonic tularemia. Little is known about the virulence mechanisms of F. tularensis, though there is a large body of evidence indicating that it is an intracellular pathogen, surviving mainly in macrophages. An unlicensed live attenuated vaccine is available, which does appear to offer protection against ulceroglandular and pneumonic tularemia. Although an improved vaccine against tularemia is highly desirable, attempts to devise such a vaccine have been limited by the inability to construct defined allelic replacement mutants and by the lack of information on the mechanisms of virulence of F. tularensis. In the absence of a licensed vaccine, aminoglycoside antibiotics play a key role in the prevention and treatment of tularemia.
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            An attenuated strain of the facultative intracellular bacterium Francisella tularensis can escape the phagosome of monocytic cells.

            The facultative intracellular bacterium Francisella tularensis is a highly virulent and contagious organism, and little is known about its intracellular survival mechanisms. We studied the intracellular localization of the attenuated human vaccine strain, F. tularensis LVS, in adherent mouse peritoneal cells, in mouse macrophage-like cell line J774A.1, and in human macrophage cell line THP-1. Confocal microscopy of infected J774A.1 cells indicated that during the first hour of infection the bacteria colocalized with the late endosomal-lysosomal glycoprotein LAMP-1, but within 3 h this colocalization decreased significantly from approximately 60% to 30%. Transmission electron microscopy revealed that >90% of bacteria were not enclosed by a phagosomal membrane after 2 h of infection, and some bacteria were in vacuoles that were only partially surrounded by a limiting membrane. Similar findings were obtained with all three host cell types. Immunoelectron microscopy performed with an F. tularensis LVS-specific polyclonal rabbit antiserum showed that the antiserum stained a thick, evenly distributed capsule-like material in bacteria grown in broth. In contrast, intracellular F. tularensis LVS cells were only marginally stained with this antiserum. Instead, most of the immunoreactive material was diffusely localized in the phagosomes or was associated with the phagosomal membrane. Our findings indicate that F. tularensis LVS is able to escape from the phagosomes of macrophages via a mechanism that may involve degradation of the phagosomal membrane.
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              Tularemia as a Biological Weapon

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                Author and article information

                Journal
                Front Cell Infect Microbiol
                Front Cell Infect Microbiol
                Front. Cell. Inf. Microbio.
                Frontiers in Cellular and Infection Microbiology
                Frontiers Media S.A.
                2235-2988
                23 August 2012
                11 October 2012
                2012
                : 2
                : 126
                Affiliations
                Regional Biocontainment Laboratory, Center for Vaccine Research, University of Pittsburgh Pittsburgh, PA, USA
                Author notes

                Edited by: Chad J. Roy, Tulane University, USA

                Reviewed by: Tonyia Eaves-Pyles, University of Texas Medical Branch, USA; Lee-Ann H. Allen, University of Iowa, USA

                *Correspondence: Douglas S. Reed, Regional Biocontainment Laboratory, Center for Vaccine Research, University of Pittsburgh, 3501 Fifth Ave., Pittsburgh, PA 15261, USA. e-mail: dsreed@ 123456cvr.pitt.edu

                †Present address: Seth A. Faith, Battelle Memorial Institute, Columbus, OH, USA. Angela S. Swatland, ZeptoMetrix Corporation, Buffalo, NY, USA.

                Article
                10.3389/fcimb.2012.00126
                3468843
                23087911
                7bf15c86-1d5a-4b3c-9333-43400b4048e7
                Copyright © 2012 Faith, Smith, Swatland and Reed.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and subject to any copyright notices concerning any third-party graphics etc.

                History
                : 24 July 2012
                : 25 September 2012
                Page count
                Figures: 9, Tables: 1, Equations: 0, References: 21, Pages: 10, Words: 6415
                Categories
                Microbiology
                Original Research Article

                Infectious disease & Microbiology
                mice,respiratory infection,francisella tularensis,tularemia,aerosol exposure

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