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Benzo[a]pyrene is associated with dysregulated myelo-lymphoid hematopoiesis in asthmatic children
Hyunok Choi1, Won-Min Song2, Minghui Wang2
1Departments of Environmental Health Sciences, Epidemiology, and Biostatistics, State University of New York at Albany School of Public Health, Rensselaer, NY, USA.
Insights
Ambient benzo[a]pyrene (B[a]P) exposure in children is linked to distinct asthma pathways. B[a]P may suppress inflammation while promoting heme biosynthesis and altering immune cell populations, contributing to childhood asthma development.
Area of Science:
- Environmental Health
- Immunology
- Systems Biology
Background:
- The role of ambient benzo[a]pyrene (B[a]P) in causing distinct de novo asthma remains unclear.
- Understanding the molecular mechanisms linking B[a]P exposure to asthma is crucial for public health.
Purpose of the Study:
- To identify molecular signatures and regulatory networks associated with childhood exposure to ambient B[a]P and asthma.
- To utilize unbiased systems biology approaches for a comprehensive analysis.
Main Methods:
- Analysis of gene expression, DNA methylation, and B[a]P concentration in asthmatic and control children.
- Integrative multiscale co-expression network analysis and machine learning (CIBERSORT) for cell type inference.
Main Results:
- Elevated B[a]P levels correlated with increased asthma severity markers in urban children.
- B[a]P exposure was associated with suppressed NF-κB inflammation, reduced Natural Killer T (NKT) cells, and activated IL10-secreting CD8+ T cells.
- B[a]P positively correlated with heme biosynthesis gene ALAS2, leading to increased neutrophilic metamyelocytes and altered erythroid cells, alongside activation of GATA1, GSTM1/3, and IL5RA.
Conclusions:
- B[a]P may concurrently suppress pro-inflammatory NKT cell responses and activate anti-inflammatory CD8+ T cell pathways in urban children with asthma.
- B[a]P exposure appears to promote heme biosynthesis, leading to neutrophilic expansion and reduced CD71+ erythroids, contributing to asthma pathogenesis.
Background:
The extent to which ambient benzo[a]pyrene (B[a]P) contributes to mechanistically distinct de novo asthma remains unknown.
Objectives:
To identify molecular signatures and regulatory networks underlying childhood exposure to ambient B[a]P and asthma, using robust and unbiased systems biology approaches.
Methods:
Clinically confirmed asthmatic (n = 191) vs. control (n = 194) children (aged, 7-15) were enrolled from a polluted urban center and semi-rural region in Czech Republic. Contemporaneous B[a]P concentration, gene expressions, DNA methylation data were analyzed against asthma diagnosis, as well as a modified prognostic index of asthma, using integrative multiscale co-expression network analysis. Sample-wise cell type compositions were inferred by a machine learning approach (i.e. CIBERSORT) with reference gene expressions of purified 38 distinct hematopoietic cell states from umbilical cord (i.e. stem cell/progenitors) or peripheral blood (i.e. lymphocytes).
Results:
The median outdoor B[a]P was increased near the homes of the urban children with 'moderate' or 'severe' prognostic markers of asthma, but not in the urban controls. An elevated B[a]P induced epigenetic suppression of NF-κB inflammation, decreased Natural Killer T (NKT) cells and activated anti-inflammatory IL10-secreting CD8+ T effective memory cells. B[a]P was positively correlated with an increased expression of a heme biosynthesis gene, ALAS2, which in turn, appears to promote concurrent increase of neutrophilic metamyelocyte and mature CD71low erythroid cells. Furthermore, erythroid-specific master transcription regulator gene (GATA1), glutathione transferase genes (GSTM1 and GSTM3) and Eosinophil marker (IL5RA) were simultaneously activated in the urban asthma cases.
Conclusions:
B[a]P might contribute to concurrent suppression of pro-inflammatory (e.g. NF-κB mediated NKT cells), and activation of anti-inflammatory pathways (e.g. IL10-secreting CD8+ T cells) in the urban asthmatic children. In addition, B[a]P appears to elevate heme biosynthesis, which in turn, promotes neutrophilic metamyelocyte expansion and reduction of CD71+ erythroids.
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