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Molecular mechanisms underlying TNFα-induced mitochondrial fragmentation in human airway smooth muscle cells
Debanjali Dasgupta1, Sanjana Mahadev Bhat1, Claire Creighton1
1Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, Minnesota, United States.
Abstract:
Tumor necrosis factor α (TNFα), a proinflammatory cytokine, plays a significant role in mediating the effects of acute inflammation in response to allergens, pollutants, and respiratory infections. Previously, we showed that acute exposure to TNFα induces mitochondrial fragmentation in human airway smooth muscle (hASM) cells, which is associated with increased expression of dynamin-related protein 1 (DRP1). Phosphorylation of DRP1 at serine 616 (pDRP1S616) promotes its translocation and binding to the outer mitochondrial membrane (OMM) and mediates mitochondrial fragmentation. Previously, we reported that TNFα exposure triggers protein unfolding and triggers an endoplasmic reticulum (ER) stress response involving phosphorylation of inositol-requiring enzyme 1α (pIRE1α) at serine 724 (pIRE1αS724) and subsequent splicing of X-box binding protein 1 (XBP1s) in hASM cells. We hypothesize that TNFα-mediated activation of the pIRE1αS724/XBP1s ER stress pathway in hASM cells transcriptionally activates genes that encode kinases responsible for pDRP1S616 phosphorylation. Using 3-D confocal imaging of MitoTracker green-labeled mitochondria, we found that TNFα treatment for 6 h induces mitochondrial fragmentation in hASM cells. We also confirmed that 6 h TNFα treatment activates the pIRE1α/XBP1s ER stress pathway. Using in silico analysis and ChIP assay, we showed that CDK1 and CDK5, kinases involved in the phosphorylation of pDRP1S616, are transcriptionally targeted by XBP1s. TNFα treatment increased the binding affinity of XBP1s on the promoter regions of CDK1 and CDK5, and this was associated with an increase in pDRP1S616 and mitochondria fragmentation. This study reveals a new underlying molecular mechanism for TNFα-induced mitochondrial fragmentation in hASM cells.NEW & NOTEWORTHY Airway inflammation is increasing worldwide. Proinflammatory cytokines mediate an adaptive mechanism to overcome inflammation-induced cellular stress. Previously, we reported that TNFα mediates hASM cellular responses, leading to increased force and ATP consumption associated with increased O2 consumption, and oxidative stress. This study indicates that TNFα induces ER stress, which induces mitochondrial fragmentation via pIRE1αS724/XBP1s mediated CDK1/5 upregulation and pDRP1S616 phosphorylation. Mitochondrial fragmentation may promote hASM mitochondrial biogenesis to maintain healthy mitochondrial pool.
Insights
Tumor necrosis factor α (TNFα) induces endoplasmic reticulum stress in airway smooth muscle cells, leading to mitochondrial fragmentation. This pathway involves pIRE1α/XBP1s activating CDK1/5, which phosphorylate DRP1, causing fragmentation.
Area of Science:
- Cellular biology
- Molecular mechanisms of inflammation
- Respiratory medicine
Background:
- Tumor necrosis factor α (TNFα) is a proinflammatory cytokine implicated in acute inflammation.
- TNFα induces mitochondrial fragmentation in human airway smooth muscle (hASM) cells via dynamin-related protein 1 (DRP1) phosphorylation.
- TNFα also triggers endoplasmic reticulum (ER) stress, involving the inositol-requiring enzyme 1α (IRE1α)/X-box binding protein 1 (XBP1) pathway.
Purpose of the Study:
- To investigate the molecular mechanism linking TNFα-induced ER stress to mitochondrial fragmentation in hASM cells.
- To determine if the pIRE1α/XBP1s pathway transcriptionally upregulates kinases responsible for DRP1 phosphorylation.
Main Methods:
- 3-D confocal imaging to assess mitochondrial fragmentation.
- Western blotting and splicing assays to confirm ER stress pathway activation.
- In silico analysis and ChIP assays to identify XBP1s transcriptional targets (CDK1, CDK5).
Main Results:
- TNFα treatment induced mitochondrial fragmentation and activated the pIRE1α/XBP1s pathway in hASM cells.
- XBP1s directly targeted the promoter regions of CDK1 and CDK5.
- TNFα increased XBP1s binding to CDK1/5 promoters, leading to increased pDRP1S616 and mitochondrial fragmentation.
Conclusions:
- TNFα induces mitochondrial fragmentation in hASM cells through an ER stress-dependent pathway.
- The pIRE1αS724/XBP1s pathway upregulates CDK1 and CDK5, which phosphorylate DRP1 at S616.
- This mechanism reveals a novel link between ER stress and mitochondrial dynamics in airway inflammation.
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