[Development of pulmonary chlamydia infection in inbred mice lines differentiated by genetically determinated
Abstract:
Mice of I/St strain develop severe lung inflammation and die shortly following infection with virulent mycobacteria. The susceptibility does not depend on the Nramp1 gene, as I/St mice carry its resistant allele, but is controlled by little interacting QTL mapped to chromosomes 3, 9, 17. To find out whether the tuberculosis-susceptible I/St mice are susceptible to other intracellular bacteria taxonomically distant pathogen of Chlamydia pneumoniae was studied. Comparison of I/St and TB-resistant A/Sn mice (both Nramp1r) demonstrated that the former were more susceptible to chlamydia, displaying a significantly shortened survival time following challenge (I/St, 9.2 +/- 1.2 days; A/Sn, 22.0 +/- 0 days (p < 0.001)). To estimate the degree of chlamydial multiplication in the lungs, we suggested a quantitative real-time polymerase chain reaction (PCR)-based method which allows enumeration of the parasite's genome equivalents in infected tissue from 1 to 16 days after challenge. The interstrain difference of chlamydia burden in lungs was observed only after 24 hours after infection. Multiplication of chlamydia in the lungs was controlled efficiently after day 4 of infection. The numbers of genome equivalents dropped slightly by day 8 both in I/St and A/Sn mice. Lung pathology develops more rapidly in I/St compared to A/Sn mice following infection with chlamydia despite their similar ability to control bacterial multiplication. Lung tissue of susceptible I/St mice was markedly infiltrated with macrophages (p < 0.01), which differed significantly from the lungs of resistant A/Sn mice. In agreement with higher macrophage content in the lungs, significantly more macrophage-derived proinflammatory cytokines TNF-? and IL-6 were detected in lung tissue homogenates obtained from I/St mice (p < 0.05). Because the prominent difference in survival time did not correlate with permanent difference in bacterial multiplication, we suggested that both infections trigger fatal pathological processes whose dynamics depends strongly upon the host genetics.
Insights
Tuberculosis-susceptible I/St mice show increased susceptibility to Chlamydia pneumoniae infection, with faster lung pathology development. This suggests host genetics, not just bacterial load, influences fatal disease progression.
Area of Science:
- Immunology
- Genetics
- Microbiology
Background:
- I/St mice exhibit severe lung inflammation and mortality upon infection with virulent mycobacteria.
- Susceptibility in I/St mice is linked to interacting QTL on chromosomes 3, 9, and 17, independent of the Nramp1 gene.
- This study investigates the susceptibility of I/St mice to Chlamydia pneumoniae, a taxonomically distant pathogen.
Purpose of the Study:
- To compare the susceptibility of I/St mice (Nramp1r) and resistant A/Sn mice (Nramp1r) to Chlamydia pneumoniae infection.
- To develop and utilize a quantitative real-time PCR method for enumerating Chlamydia pneumoniae genome equivalents in lung tissue.
- To investigate the correlation between bacterial burden, lung pathology, and host genetic factors in Chlamydia pneumoniae infection.
Main Methods:
- Comparative infection study using I/St and A/Sn mouse strains.
- Quantitative real-time PCR for Chlamydia pneumoniae genome enumeration in lung tissue.
- Histopathological analysis and measurement of proinflammatory cytokines (TNF-α, IL-6) in lung tissue.
Main Results:
- I/St mice displayed significantly shortened survival time compared to A/Sn mice following Chlamydia pneumoniae challenge (9.2 vs. 22.0 days).
- Chlamydia burden differences were transient, observed only at 24 hours post-infection, with efficient control after day 4 in both strains.
- I/St mice showed more rapid lung pathology, increased macrophage infiltration, and higher levels of TNF-α and IL-6 in lung tissue compared to A/Sn mice.
Conclusions:
- Host genetics strongly influences the dynamics of fatal pathological processes triggered by intracellular bacterial infections, beyond mere bacterial multiplication.
- Increased susceptibility in I/St mice is associated with heightened inflammatory responses, particularly macrophage recruitment and cytokine production.
- The study highlights the role of host genetic background in determining disease severity and outcome in response to diverse bacterial pathogens.
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