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Identification and Characterization of Immunogenic RNA Species in HDM Allergens that Modulate Eosinophilic Lung Inflammation
Published on: May 30, 2020
In vitro assessment of respiratory sensitization potential and allergic asthma: A miRNA-based approach
Francesca Carlotta Passoni1, Martina Iulini1, Gloria Melzi1
1Laboratory of Toxicology and Risk Assessment, Department of Pharmacological and Biomolecular Sciences "Rodolfo Paoletti", Università degli Studi di Milano, Milan, Italy.
Abstract:
Occupational exposure to respiratory sensitizers is a major cause of allergic asthma. Although miRNAs are increasingly linked to asthma pathogenesis, their specific role in allergic asthma remains poorly defined. This study aims to assess a human-based 3D in vitro model to investigate the possible role of miRNAs in allergic asthma. Calu-3 cells cultured in ALI were exposed to three respiratory sensitizers: hexamethylen diisocyanate (HDI), ammonium hexachloroplatinate (HClPt), and trimellitic anhydride (TMA) using VITROCELL® Cloud Alpha 6 System. In addition, 2,4-dinitrochlorobenzene (DNCB) as skin sensitizer and the irritant sodium dodecyl sulphate (SDS) were tested. Cytotoxicity was assessed by MTT and LDH assays, while epithelial barrier integrity was evaluated by TEER. MiRNA profiling was performed, followed by targeted analysis. Cytokine release (IFN-γ, IL-4, IL-5, IL-6, IL-8, IL-10, IL-17, IL-18, IL-33, MCP-1, MIP-1α, TGF-β and TSLP) was quantified, and miRNAs involvement was investigated using miRNA mimics and inhibitors. HMOX gene expression was assessed. MiRNA profiling revealed several miRNAs consistently downregulated across all respiratory sensitizers, including miR-26b-5p, miR-34a-5p, miR-125b-5p, miR-148a-3p, and miR-200a-3p. HClPt induced a significant increase in IL-6 release and HMOX expression, whereas HDI and TMA caused a significant reduction. To understand the possible link, specific miRNA mimic and inhibitor conditions were used. Results indicate that miR-18b-5p, miR-135b-5p and let-7a-5p regulated IL-6 release and HMOX expression. Respiratory sensitizers from different chemical classes were able to induce distinct miRNA-dependent regulatory mechanisms affecting IL-6 and HMOX expression. These findings support the relevance of human cell-based in vitro models for investigating allergic asthma.
Insights
This study used a 3D in vitro model to investigate microRNAs (miRNAs) in allergic asthma caused by occupational sensitizers. Specific miRNAs were found to regulate key inflammatory responses, highlighting their role in disease development.
Area of Science:
- * Inhalation Toxicology
- * Molecular Biology
- * Immunology
Background:
- * Occupational exposure to respiratory sensitizers is a primary cause of allergic asthma.
- * The precise role of microRNAs (miRNAs) in allergic asthma pathogenesis requires further elucidation.
- * Human-based 3D in vitro models offer a promising platform for studying complex respiratory diseases.
Purpose of the Study:
- * To investigate the role of miRNAs in allergic asthma using a human 3D in vitro model.
- * To identify specific miRNAs modulated by occupational respiratory sensitizers.
- * To explore the regulatory mechanisms of miRNAs on cytokine release and gene expression.
Main Methods:
- * Calu-3 cells cultured at air-liquid interface (ALI) were exposed to respiratory sensitizers (HDI, HClPt, TMA) and controls (DNCB, SDS).
- * Assessed cytotoxicity (MTT, LDH), epithelial barrier integrity (TEER), miRNA profiling, cytokine release (ELISA), and HMOX gene expression.
- * Utilized miRNA mimics and inhibitors to determine miRNA involvement in regulating IL-6 and HMOX expression.
Main Results:
- * Respiratory sensitizers downregulated specific miRNAs, including miR-26b-5p, miR-34a-5p, miR-125b-5p, miR-148a-3p, and miR-200a-3p.
- * Ammonium hexachloroplatinate (HClPt) increased IL-6 release and HMOX expression, while HDI and TMA decreased them.
- * miR-18b-5p, miR-135b-5p, and let-7a-5p were identified as regulators of IL-6 release and HMOX expression.
Conclusions:
- * Different chemical classes of respiratory sensitizers induce distinct miRNA-dependent regulatory mechanisms.
- * The identified miRNAs play a role in modulating IL-6 and HMOX expression in response to sensitizer exposure.
- * Human cell-based 3D in vitro models are relevant for investigating allergic asthma mechanisms.

