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Identification and Characterization of Immunogenic RNA Species in HDM Allergens that Modulate Eosinophilic Lung Inflammation
Published on: May 30, 2020
DEK deficiency suppresses mitophagy to protect against house dust mite-induced asthma
Qiaoyun Bai1,2, Ruobai Liu1,2, Changlin Quan1,2
1Jilin Key Laboratory for Immune and Targeting Research on Common Allergic Diseases, Yanbian University, Yanji, China.
Abstract:
DEK protein is highly expressed in asthma. However, the mechanism of DEK on mitophagy in asthma has not been fully understood. This study aims to investigate the role and mechanism of DEK in asthmatic airway inflammation and in regulating PINK1-Parkin-mediated mitophagy, NLRP3 inflammasome activation, and apoptosis. PINK1-Parkin mitophagy, NLRP3 inflammasome, and apoptosis were examined after gene silencing or treatment with specific inhibitors (MitoTEMPO, MCC950, and Ac-DEVD-CHO) in house dust mite (HDM) or recombinant DEK (rmDEK)-induced WT and DEK-/- asthmatic mice and BEAS-2B cells. The regulatory role of DEK on ATAD3A was detected using ChIP-sequence and co-immunoprecipitation. rmDEK promoted eosinophil recruitment, and co-localization of TOM20 and LC3B, MFN1 and mitochondria, LC3B and VDAC, and ROS generation, reduced protein level of MnSOD in HDM induced-asthmatic mice. Moreover, rmDEK also increased DRP1 expression, PINK1-Parkin-mediated mitophagy, NLRP3 inflammasome activation, and apoptosis. These effects were partially reversed in DEK-/- mice. In BEAS-2B cells, siDEK diminished the Parkin, LC3B, and DRP1 translocation to mitochondria, mtROS, TOM20, and mtDNA. ChIP-sequence analysis showed that DEK was enriched on the ATAD3A promoter and could positively regulate ATAD3A expression. Additionally, ATAD3A was highly expressed in HDM-induced asthma models and interacted with DRP1, and siATAD3A could down-regulate DRP1 and mtDNA-mediated mitochondrial oxidative damage. Conclusively, DEK deficiency alleviates airway inflammation in asthma by down-regulating PINK1-Parkin mitophagy, NLRP3 inflammasome activation, and apoptosis. The mechanism may be through the DEK/ATAD3A/DRP1 signaling axis. Our findings may provide new potential therapeutic targets for asthma treatment.
Insights
DEK protein exacerbates asthma by promoting mitophagy and inflammation. Targeting the DEK/ATAD3A/DRP1 pathway may offer new asthma treatments.
Area of Science:
- Cell Biology
- Immunology
- Molecular Biology
Background:
- DEK protein is upregulated in asthma, but its precise role in airway inflammation and mitophagy remains unclear.
- Understanding DEK's mechanism is crucial for developing targeted asthma therapies.
Purpose of the Study:
- To investigate the role of DEK in asthmatic airway inflammation.
- To elucidate DEK's mechanism in regulating mitophagy, NLRP3 inflammasome activation, and apoptosis.
- To identify the DEK/ATAD3A/DRP1 signaling axis in asthma.
Main Methods:
- Utilized house dust mite (HDM) and recombinant DEK (rmDEK) induced asthma models in mice (WT and DEK-/-) and BEAS-2B cells.
- Assessed mitophagy (PINK1-Parkin pathway), NLRP3 inflammasome activation, apoptosis, and reactive oxygen species (ROS) generation.
- Employed gene silencing (siDEK, siATAD3A), specific inhibitors, ChIP-sequence, and co-immunoprecipitation.
Main Results:
- rmDEK promoted eosinophil recruitment, mitophagy, ROS generation, NLRP3 inflammasome activation, and apoptosis in asthma models.
- DEK deficiency partially reversed these effects.
- DEK positively regulated ATAD3A expression, which in turn influenced DRP1 and mitochondrial damage.
Conclusions:
- DEK deficiency alleviates airway inflammation in asthma by down-regulating PINK1-Parkin mitophagy, NLRP3 inflammasome activation, and apoptosis.
- The DEK/ATAD3A/DRP1 signaling axis is implicated in the pathogenesis of asthma.
- This study identifies potential therapeutic targets for asthma treatment.
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