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Ndeh, R.

Publications and source records attributed to Ndeh, R..

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DNA methyltransferase inhibition induces dynamic gene expression changes in lung CD4+ T cells of neonatal mice with E. coli pneumonia

IntroductionBacterial pulmonary infections are a major cause of morbidity and mortality in neonates, with less severity in older children. Previous studies demonstrated that the DNA of CD4+ T cells in the mouse lung, whose primary responsibility is to coordinate the immune response foreign pathogens, is differentially methylated in neonates compared with juveniles. Nevertheless, the effect of this differential DNA methylation on CD4+ T cell gene expression and response to infection remains unclear. MethodsWe treated E. coli-infected neonatal (4-day-old) and juvenile (13-day-old) mice with decitabine (DAC), a DNA methyltransferase inhibitor with broad-spectrum DNA demethylating activity, and performed simultaneous genome-wide DNA methylation and transcriptional profiling on lung CD4+ T cells. ResultsJuvenile and neonatal mice experienced differential demethylation in response to DAC treatment, with larger methylation differences observed in neonates. By cross-filtering differentially expressed genes between juveniles and neonates with those sites that were demethylated in neonates, we found that interferon-responsive genes such as Ifit1 are the most down-regulated methylation-sensitive genes in neonatal mice. DAC treatment shifted neonatal lung CD4+ T cells toward a gene expression program similar to that of juveniles. ConclusionFollowing lung infection with E. coli, lung CD4+ T cells in neonatal mice exhibit epigenetic repression of important host defense pathways, which are activated by inhibition of DNA methyltransferase activity to resemble a more mature profile.

immunology↗

Cellular and molecular dynamics in the lungs of neonatal and juvenile mice in response to E. coli

Bacterial pneumonias cause significantly higher morbidity and mortality in neonates compared to other age groups. To understand the immune mechanisms that underlie these age-related differences, we employed a mouse model of E. coli pneumonia to examine cellular and molecular dynamics in immune responsiveness in neonates (PND 3-5) and juveniles (PND 12-18) at 24, 48, and 72 hours. Cytokine gene expression from whole lung extracts was quantified using qRT-PCR. E. coli challenge resulted in rapid and significant increases in neutrophils, monocytes, and y{delta}T cells and significant decreases in dendritic cells and alveolar macrophages for both neonates and juveniles. Juveniles had significant increases in interstitial macrophages and recruited monocytes that were not observed in neonatal lungs. Expression of IFN{gamma}-responsive genes were positively correlated with the levels and dynamics of MHCII-expressing innate cells in neonatal and juvenile lungs. Several facets of the responses of wild-type neonates was recapitulated in juvenile MHCII-/- juveniles. Employing a pre-clinical model of E. coli pneumonia, we identified significant differences in the early cellular and molecular dynamics in the lungs that likely contribute to the elevated susceptibility of neonates to bacterial pneumonia and could represent targets for intervention to improve respiratory outcomes and survivability of neonates.

immunology↗