Molecular Mechanisms Underlying TNFα-Induced Mitochondrial Biogenesis in Human Airway Smooth Muscle.
Debanjali DasguptaSanjana Mahadev BhatAlexis L PricePhilippe DelmotteGary C SieckPublished in: International journal of molecular sciences (2023)
Proinflammatory cytokines such as TNFα mediate airway inflammation. Previously, we showed that TNFα increases mitochondrial biogenesis in human ASM (hASM) cells, which is associated with increased PGC1α expression. We hypothesized that TNFα induces CREB and ATF1 phosphorylation (pCREB S133 and pATF1 S63 ), which transcriptionally co-activate PGC1α expression. Primary hASM cells were dissociated from bronchiolar tissue obtained from patients undergoing lung resection, cultured (one-three passages), and then differentiated by serum deprivation (48 h). hASM cells from the same patient were divided into two groups: TNFα (20 ng/mL) treated for 6 h and untreated controls. Mitochondria were labeled using MitoTracker green and imaged using 3D confocal microscopy to determine mitochondrial volume density. Mitochondrial biogenesis was assessed based on relative mitochondrial DNA (mtDNA) copy number determined by quantitative real-time PCR (qPCR). Gene and/or protein expression of pCREB S133 , pATF1 S63 , PCG1α, and downstream signaling molecules (NRFs, TFAM) that regulate transcription and replication of the mitochondrial genome, were determined by qPCR and/or Western blot. TNFα increased mitochondrial volume density and mitochondrial biogenesis in hASM cells, which was associated with an increase in pCREB S133 , pATF1 S63 and PCG1α expression, with downstream transcriptional activation of NRF1, NRF2 , and TFAM. We conclude that TNFα increases mitochondrial volume density in hASM cells via a pCREB S133 /pATF1 S63 /PCG1α-mediated pathway.
Keyphrases
- oxidative stress
- copy number
- mitochondrial dna
- induced apoptosis
- rheumatoid arthritis
- cell cycle arrest
- endothelial cells
- poor prognosis
- patients undergoing
- smooth muscle
- diabetic rats
- genome wide
- transcription factor
- signaling pathway
- dna methylation
- gene expression
- endoplasmic reticulum stress
- skeletal muscle
- computed tomography
- induced pluripotent stem cells
- reactive oxygen species
- high resolution
- heat shock protein
- genome wide identification