Biphasic lung injury during Streptococcus pneumoniae infection in a murine model

2018 ◽  
Vol 48 (2) ◽  
pp. 103-113
Author(s):  
A. Prevotat ◽  
C. Rouyer ◽  
P. Gosset ◽  
E. Kipnis ◽  
K. Faure ◽  
...  
2016 ◽  
Vol 6 (1) ◽  
Author(s):  
Liang Cui ◽  
Dahai Zheng ◽  
Yie Hou Lee ◽  
Tze Khee Chan ◽  
Yadunanda Kumar ◽  
...  

2021 ◽  
Vol 12 ◽  
Author(s):  
Liliana A. González ◽  
Felipe Melo-González ◽  
Valentina P. Sebastián ◽  
Omar P. Vallejos ◽  
Loreani P. Noguera ◽  
...  

Neutrophils are immune cells classically defined as pro-inflammatory effector cells. However, current accumulated evidence indicates that neutrophils have more versatile immune-modulating properties. During acute lung infection with Streptococcus pneumoniae in mice, interleukin-10 (IL-10) production is required to temper an excessive lung injury and to improve survival, yet the cellular source of IL-10 and the immunomodulatory role of neutrophils during S. pneumoniae infection remain unknown. Here we show that neutrophils are the main myeloid cells that produce IL-10 in the lungs during the first 48 h of infection. Importantly, in vitro assays with bone-marrow derived neutrophils confirmed that IL-10 can be induced by these cells by the direct recognition of pneumococcal antigens. In vivo, we identified the recruitment of two neutrophil subpopulations in the lungs following infection, which exhibited clear morphological differences and a distinctive profile of IL-10 production at 48 h post-infection. Furthermore, adoptive transfer of neutrophils from WT mice into IL-10 knockout mice (Il10-/-) fully restored IL-10 production in the lungs and reduced lung histopathology. These results suggest that IL-10 production by neutrophils induced by S. pneumoniae limits lung injury and is important to mediate an effective immune response required for host survival.


2016 ◽  
Vol 46 (9) ◽  
pp. 2175-2186 ◽  
Author(s):  
Barbara B. Maier ◽  
Anastasiya Hladik ◽  
Karin Lakovits ◽  
Ana Korosec ◽  
Rui Martins ◽  
...  

mSystems ◽  
2020 ◽  
Vol 5 (3) ◽  
Author(s):  
Vaughn S. Cooper ◽  
Erin Honsa ◽  
Hannah Rowe ◽  
Christopher Deitrick ◽  
Amy R. Iverson ◽  
...  

ABSTRACT Experimental evolution is a powerful technique to understand how populations evolve from selective pressures imparted by the surrounding environment. With the advancement of whole-population genomic sequencing, it is possible to identify and track multiple contending genotypes associated with adaptations to specific selective pressures. This approach has been used repeatedly with model species in vitro, but only rarely in vivo. Herein we report results of replicate experimentally evolved populations of Streptococcus pneumoniae propagated by repeated murine nasal colonization with the aim of identifying gene products under strong selection as well as the population genetic dynamics of infection cycles. Frameshift mutations in one gene, dltB, responsible for incorporation of d-alanine into teichoic acids on the bacterial surface, evolved repeatedly and swept to high frequency. Targeted deletions of dltB produced a fitness advantage during initial nasal colonization coupled with a corresponding fitness disadvantage in the lungs during pulmonary infection. The underlying mechanism behind the fitness trade-off between these two niches was found to be enhanced adherence to respiratory cells balanced by increased sensitivity to host-derived antimicrobial peptides, a finding recapitulated in the murine model. Additional mutations that are predicted to affect trace metal transport, central metabolism, and regulation of biofilm production and competence were also selected. These data indicate that experimental evolution can be applied to murine models of pathogenesis to gain insight into organism-specific tissue tropisms. IMPORTANCE Evolution is a powerful force that can be experimentally harnessed to gain insight into how populations evolve in response to selective pressures. Herein we tested the applicability of experimental evolutionary approaches to gain insight into how the major human pathogen Streptococcus pneumoniae responds to repeated colonization events using a murine model. These studies revealed the population dynamics of repeated colonization events and demonstrated that in vivo experimental evolution resulted in highly reproducible trajectories that reflect the environmental niche encountered during nasal colonization. Mutations impacting the surface charge of the bacteria were repeatedly selected during colonization and provided a fitness benefit in this niche that was counterbalanced by a corresponding fitness defect during lung infection. These data indicate that experimental evolution can be applied to models of pathogenesis to gain insight into organism-specific tissue tropisms.


2016 ◽  
Vol 9 (4) ◽  
pp. 332-338
Author(s):  
Tae Young Jang ◽  
Ah-Yeoun Jung ◽  
Young Hyo Kim

2017 ◽  
Vol 47 ◽  
pp. 218-226 ◽  
Author(s):  
Ahmed Nadeem ◽  
Nahid Siddiqui ◽  
Naif O. Al-Harbi ◽  
Sabry M. Attia ◽  
Shakir D. AlSharari ◽  
...  

Thorax ◽  
2013 ◽  
Vol 68 (Suppl 3) ◽  
pp. A52.2-A53 ◽  
Author(s):  
D Parekh ◽  
RCA Dancer ◽  
S Lax ◽  
GD Perkins ◽  
DR Thickett

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