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In vivo Imaging Method to Distinguish Acute and Chronic Inflammation
Published on: August 16, 2013
Differential modulation of pulmonary caspases: Is this the key to Ureaplasma-driven chronic inflammation?
Christine Silwedel1, Markus Fehrholz1, Christian P Speer1
1University Children´s Hospital, University of Wuerzburg, Wuerzburg, Germany.
Abstract:
Although accepted agents in chorioamnionitis and preterm birth, the role of Ureaplasma species (spp.) in inflammation-driven morbidities of prematurity, including the development of bronchopulmonary dysplasia, remains controversial. To add to scarce in vitro data addressing the pro-inflammatory capacity of Ureaplasma spp., pulmonary epithelial-like A549 cells and human pulmonary microvascular endothelial cells (HPMEC) were incubated with Ureaplasma (U.) urealyticum, U. parvum, and Escherichia coli lipopolysaccharide (LPS). Ureaplasma isolates down-regulated caspase mRNA levels in A549 cells (caspase 8: p<0.001, 9: p<0.001, vs. broth), while increasing caspase protein expression, enzyme activity, and cell death in HPMEC (active caspase 3: p<0.05, caspase 8: p<0.05, active caspase 9: p<0.05, viability: p<0.05). LPS, contrarily, induced caspase mRNA expression in HPMEC (caspase 3: p<0.01, 4: p<0.001, 5: p<0.001, 8: p<0.001, vs. control), but not in A549 cells, and did not affect enzyme activity or protein levels in either cell line. LPS, but neither Ureaplasma isolate, enhanced mRNA expression of pro-inflammatory interleukin (IL)-6 in both A549 (p<0.05, vs. control) and HPMEC (p<0.001) as well as tumor necrosis factor-α (p<0.01), IL-1β (p<0.001), and IL-8 (p<0.05) in HPMEC. We are therefore the first to demonstrate a differential modulation of pulmonary caspases by Ureaplasma spp. in vitro. Ureaplasma-driven enhanced protein expression and activity of caspases in pulmonary endothelial cells result in cell death and may cause structural damage. Down-regulated caspase mRNA in pulmonary epithelial cells, contrarily, may indicate Ureaplasma-induced inhibition of apoptosis and prevent effective immune responses. Both may ultimately contribute to chronic Ureaplasma colonization and long-term pulmonary inflammation.
Insights
Ureaplasma species differentially affect pulmonary cells, increasing endothelial cell death and inhibiting epithelial cell apoptosis. This in vitro study suggests Ureaplasma may contribute to chronic lung inflammation in premature infants.
Area of Science:
- Microbiology
- Cell Biology
- Neonatal Research
Background:
- Ureaplasma species (spp.) are implicated in chorioamnionitis and preterm birth, but their role in inflammation-related morbidities like bronchopulmonary dysplasia is debated.
- Limited in vitro data exist on the pro-inflammatory capacity of Ureaplasma spp.
Purpose of the Study:
- To investigate the in vitro effects of Ureaplasma urealyticum and Ureaplasma parvum on pulmonary cell apoptosis and inflammation.
- To compare the effects of Ureaplasma spp. with lipopolysaccharide (LPS) from Escherichia coli on pulmonary cells.
Main Methods:
- Pulmonary epithelial-like A549 cells and human pulmonary microvascular endothelial cells (HPMEC) were incubated with Ureaplasma isolates or LPS.
- Caspase mRNA and protein levels, enzyme activity, cell viability, and pro-inflammatory cytokine expression (IL-6, TNF-α, IL-1β, IL-8) were analyzed.
Main Results:
- Ureaplasma isolates down-regulated caspase mRNA in A549 cells but increased caspase protein, activity, and cell death in HPMEC.
- LPS induced caspase mRNA in HPMEC but not A549 cells, without affecting enzyme activity or protein levels in either cell line.
- LPS, but not Ureaplasma, increased pro-inflammatory cytokine mRNA (IL-6, TNF-α, IL-1β, IL-8) in pulmonary cells.
Conclusions:
- This study is the first to demonstrate differential modulation of pulmonary caspases by Ureaplasma spp. in vitro.
- Ureaplasma-induced caspase activity in pulmonary endothelial cells may lead to cell death and structural damage.
- Inhibition of apoptosis in pulmonary epithelial cells by Ureaplasma may contribute to chronic colonization and persistent lung inflammation in preterm infants.
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