The Lung Alveolar Cell (LAC) miRNome and Gene Expression Profile of the SP-A-KO Mice After Infection With and Without

Nithyananda Thorenoor1,2, Joanna Floros1,3

  • 1Department of Pediatrics, College of Medicine, The Pennsylvania State University, Hershey, PA, United States.

Insights

Surfactant protein-A (SP-A) treatment impacts lung cell microRNAs and gene expression in male and female mice infected with Klebsiella pneumoniae, highlighting potential therapeutic roles in pulmonary infections.

Area of Science:

  • Pulmonary immunology
  • Molecular biology
  • Microbiology

Background:

  • Human surfactant protein-A (SP-A) influences alveolar macrophages and improves survival in infected SP-A knockout mice.
  • SP-A exhibits differential effects on the alveolar macrophage miRNome.

Purpose of the Study:

  • To investigate the role of exogenous SP-A protein treatment on lung alveolar cell (LAC) miRNome, miRNA-RNA targets, and gene expression in SP-A knockout mice infected with Klebsiella pneumoniae.
  • To analyze sex-specific differences in response to infection and SP-A treatment.

Main Methods:

  • SP-A knockout mice of both sexes were infected with Klebsiella pneumoniae.
  • Half of the infected mice received SP-A2 treatment.
  • LAC miRNome, gene expression, and miRNA-mRNA targets were analyzed after 6 hours.

Main Results:

  • Significant differences were observed in LAC miRNome, genes, and miRNA-mRNA targets based on sex, infection, and SP-A2 treatment.
  • MiRNA-mRNA targets increased in male versus female KO mice, implicating inflammation, anti-apoptosis, and cell cycle pathways.
  • TP-53, tumor necrosis factor (TNF), and cell cycle signaling were significantly altered.
  • TNF and cell cycle pathways were identified as significant 'integrated pathways'.

Conclusions:

  • SP-A treatment significantly modulates the lung cell miRNome, gene expression, and miRNA-mRNA targets in a sex-dependent manner during Klebsiella pneumoniae infection.
  • The cell cycle and TNF signaling pathways are key integrated pathways affected by SP-A treatment.
  • Understanding these molecular responses is crucial for developing SP-A-based therapeutics for pulmonary diseases.

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