TY - JOUR
T1 - Murine alveolar macrophages are highly susceptible to replication of Coxiella burnetii phase II In Vitro
AU - Fernandes, Talita D.
AU - Cunha, Larissa D.
AU - Ribeiro, Juliana M.
AU - Massis, Liliana M.
AU - Lima-Junior, Djalma S.
AU - Newton, Hayley J.
AU - Zamboni, Dario S.
N1 - Funding Information:
We are grateful to Maira C. Nakamura and Victoria Maria dos Santos for technical assistance. We also thank Maria D. S. Ferreira, José A. Maulin, and Roberta R. Rosales for technical assistance in the institutional facilities for electron microscopy (M. D. S. Ferreira and J. A. Maulin) and multiphoton microscopy (R. R. Rosales). We declare no conflict of interest in relation to this work. This work was supported by grants from the Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP; grants 2013/08216-2, 2014/50268-2, and 2014/04684-4), Conselho Nacional do Desenvolvimento Cientifico e Tecnológico (CNPq), Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES), Fundação de Amparo ao Ensino, Pesquisa e Assistência do Hospital das Clínicas da FMRP/USP (FAEPA), and the Australian National Health and Medical Research Council (NHMRC; grants 1062383 and 1063646 to H.J.N.). T.D.F. and L.M.M. are supported by a fellowship from CAPES. L.D.C., J.M.R., and D.S.L. are supported by fellowships from FAPESP. H.J.N. is a visiting professor from the Science without Borders Program (CNPq; grant 401577/2014-7). D.S.Z. is a research fellow from CNPq, Brazil. The funders had no role in study design, data collection and interpretation, or the decision to submit the work for publication.
Publisher Copyright:
© 2016, American Society for Microbiology.
PY - 2016/9
Y1 - 2016/9
N2 - Coxiella burnetii is a Gram-negative bacterium that causes Q fever in humans. Q fever is an atypical pneumonia transmitted through inhalation of contaminated aerosols. In mammalian lungs, C. burnetii infects and replicates in several cell types, including alveolar macrophages (AMs). The innate immunity and signaling pathways operating during infection are still poorly understood, in part because of the lack of relevant host cell models for infection in vitro. In the study described here, we investigated and characterized the infection of primary murine AMs by C. burnetii phase II in vitro. Our data reveal that AMs show a pronounced M2 polarization and are highly permissive to C. burnetii multiplication in vitro. Murine AMs present an increased susceptibility to infection in comparison to primary bone marrow-derived macrophages. AMs support more than 2 logs of bacterial replication during 12 days of infection in culture, similar to highly susceptible host cells, such as Vero and THP-1 cells. As a proof of principle that AMs are useful for investigation of C. burnetii replication, we performed experiments with AMs from Nos2-/- or Ifng-/- mice. In the absence of gamma interferon and nitric oxide synthase 2 (NOS2), AMs were significantly more permissive than wild-type cells. In contrast, AMs from Il4-/- mice were more restrictive to C. burnetii replication, supporting the importance of M2 polarization for the permissiveness of AMs to C. burnetii replication. Collectively, our data account for understanding the high susceptibility of alveolar macrophages to bacterial replication and support the use of AMs as a relevant model of C. burnetii growth in primary macrophages.
AB - Coxiella burnetii is a Gram-negative bacterium that causes Q fever in humans. Q fever is an atypical pneumonia transmitted through inhalation of contaminated aerosols. In mammalian lungs, C. burnetii infects and replicates in several cell types, including alveolar macrophages (AMs). The innate immunity and signaling pathways operating during infection are still poorly understood, in part because of the lack of relevant host cell models for infection in vitro. In the study described here, we investigated and characterized the infection of primary murine AMs by C. burnetii phase II in vitro. Our data reveal that AMs show a pronounced M2 polarization and are highly permissive to C. burnetii multiplication in vitro. Murine AMs present an increased susceptibility to infection in comparison to primary bone marrow-derived macrophages. AMs support more than 2 logs of bacterial replication during 12 days of infection in culture, similar to highly susceptible host cells, such as Vero and THP-1 cells. As a proof of principle that AMs are useful for investigation of C. burnetii replication, we performed experiments with AMs from Nos2-/- or Ifng-/- mice. In the absence of gamma interferon and nitric oxide synthase 2 (NOS2), AMs were significantly more permissive than wild-type cells. In contrast, AMs from Il4-/- mice were more restrictive to C. burnetii replication, supporting the importance of M2 polarization for the permissiveness of AMs to C. burnetii replication. Collectively, our data account for understanding the high susceptibility of alveolar macrophages to bacterial replication and support the use of AMs as a relevant model of C. burnetii growth in primary macrophages.
UR - https://www.scopus.com/pages/publications/84984856694
U2 - 10.1128/IAI.00411-16
DO - 10.1128/IAI.00411-16
M3 - Article
C2 - 27297388
AN - SCOPUS:84984856694
SN - 0019-9567
VL - 84
SP - 2439
EP - 2448
JO - Infection and Immunity
JF - Infection and Immunity
IS - 9
ER -