Effects of organic chemicals from diesel exhaust particles on adipocytes differentiated from human mesenchymal stem cells.
Bendik Christian BrinchmannJørn A HolmeNadine FrerkerMia H RambølTommy KarlsenJan E BrinchmannAlena KubátováKlara KukowskiTonje SkulandJohan ØvrevikPublished in: Basic & clinical pharmacology & toxicology (2022)
Exposure to fine particulate matter (PM 2.5 ) from incomplete fossil fuel combustion (coal, oil, gas and diesel) has been linked to increased morbidity and mortality due to metabolic diseases. PM 2.5 exaggerate adipose inflammation and insulin resistance in mice with diet-induced obesity. Here, we elucidate the hypothesis that such systemic effects may be triggered by adhered particle components affecting adipose tissue directly. Studying adipocytes differentiated from primary human mesenchymal stem cells, we found that lipophilic organic chemicals (OC) from diesel exhaust particles induced inflammation-associated genes and increased secretion of the chemokine CXLC8/interleukin-8 as well as matrix metalloprotease 1. The oxidative stress response gene haem oxygenase-1 and tumour necrosis factor alpha were seemingly not affected, while aryl hydrocarbon receptor-regulated genes, cytochrome P450 1A1 (CYP1A1) and CYP1B1 and plasminogen activator inhibitor-2, were clearly up-regulated. Finally, expression of β-adrenergic receptor, known to regulate adipocyte homoeostasis, was down-regulated by exposure to these lipophilic OC. Our results indicate that low concentrations of OC from combustion particles have the potential to modify expression of genes in adipocytes that may be linked to metabolic disease. Further studies on mechanisms linking PM exposure and metabolic diseases are warranted.
Keyphrases
- particulate matter
- adipose tissue
- air pollution
- insulin resistance
- high fat diet induced
- mesenchymal stem cells
- genome wide
- genome wide identification
- endothelial cells
- poor prognosis
- high fat diet
- oxidative stress
- transcription factor
- umbilical cord
- binding protein
- bioinformatics analysis
- genome wide analysis
- high glucose
- induced pluripotent stem cells
- bone marrow
- metabolic syndrome
- pluripotent stem cells
- type diabetes
- heavy metals
- diabetic rats
- stem cells
- skeletal muscle
- dna methylation
- weight loss
- water soluble
- fatty acid
- weight gain
- body mass index
- case control
- human health