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MicroRNAs and histone deacetylase inhibition-mediated protection against inflammatory β-cell damage
Anna Lindeløv Vestergaard1, Claus Heiner Bang-Berthelsen2, Tina Fløyel2,3
1Department of Biomedical Sciences, University of Copenhagen, Copenhagen, Denmark.
Abstract:
Inflammatory β-cell failure contributes to type 1 and type 2 diabetes pathogenesis. Pro-inflammatory cytokines cause β-cell dysfunction and apoptosis, and lysine deacetylase inhibitors (KDACi) prevent β-cell failure in vitro and in vivo, in part by reducing NF-κB transcriptional activity. We investigated the hypothesis that the protective effect of KDACi involves transcriptional regulation of microRNAs (miRs), potential new targets in diabetes treatment. Insulin-producing INS1 cells were cultured with or without the broad-spectrum KDACi Givinostat, prior to exposure to the pro-inflammatory cytokines IL-1β and IFN-γ for 6 h or 24 h, and miR expression was profiled with miR array. Thirteen miRs (miR-7a-2-3p, miR-29c-3p, miR-96-5p, miR-101a-3p, miR-140-5p, miR-146a-5p, miR-146b-5p, miR-340-5p, miR-384-5p, miR-455-5p, miR-466b-2-3p, miR-652-5p, and miR-3584-5p) were regulated by both cytokines and Givinostat, and nine were examined by qRT-PCR. miR-146a-5p was strongly regulated by cytokines and KDACi and was analyzed further. miR-146a-5p expression was induced by cytokines in rat and human islets. Cytokine-induced miR-146a-5p expression was specific for INS1 and β-TC3 cells, whereas α-TC1 cells exhibited a higher basal expression. Transfection of INS1 cells with miR-146a-5p reduced cytokine signaling, including the activity of NF-κB and iNOS promoters, as well as NO production and protein levels of iNOS and its own direct targets TNF receptor associated factor 6 (TRAF6) and interleukin-1 receptor-associated kinase 1 (IRAK1). miR-146a-5p was elevated in the pancreas of diabetes-prone BB-DP rats at diabetes onset, suggesting that miR-146a-5p could play a role in type 1 diabetes development. The miR array of cytokine-exposed INS1 cells rescued by KDACi revealed several other miRs potentially involved in cytokine-induced β-cell apoptosis, demonstrating the strength of this approach.
Insights
Lysine deacetylase inhibitors (KDACi) protect against inflammatory beta-cell failure by regulating microRNAs (miRs). miR-146a-5p, induced by cytokines, reduces inflammation and may play a role in type 1 diabetes.
Area of Science:
- Endocrinology
- Molecular Biology
- Immunology
Background:
- Inflammatory beta-cell failure is central to type 1 and type 2 diabetes.
- Pro-inflammatory cytokines induce beta-cell dysfunction and apoptosis.
- Lysine deacetylase inhibitors (KDACi) mitigate beta-cell failure by reducing NF-κB activity.
Purpose of the Study:
- Investigate if KDACi's protective effects involve microRNA (miR) regulation.
- Identify miRs modulated by cytokines and KDACi in beta-cells.
- Explore the role of miR-146a-5p in cytokine-induced beta-cell responses and diabetes.
Main Methods:
- Cultured INS1 cells with KDACi (Givinostat) and pro-inflammatory cytokines (IL-1β, IFN-γ).
- Profiled miR expression using miR array and validated with qRT-PCR.
- Assessed miR-146a-5p function via transfection, measuring NF-κB activity, iNOS, and downstream targets.
Main Results:
- Thirteen miRs were regulated by both cytokines and Givinostat; miR-146a-5p showed significant regulation.
- Cytokine-induced miR-146a-5p expression was observed in rat and human islets and specific cell lines.
- Transfection with miR-146a-5p reduced cytokine signaling, NF-κB activity, iNOS production, and key protein targets (TRAF6, IRAK1).
- miR-146a-5p was elevated in the pancreas of diabetes-prone rats at disease onset.
Conclusions:
- KDACi protect beta-cells, partly through miR regulation.
- miR-146a-5p is induced by inflammatory cytokines and suppresses inflammatory signaling pathways in beta-cells.
- Elevated miR-146a-5p in diabetes-prone rats suggests its involvement in type 1 diabetes pathogenesis.
- This study highlights miRs as potential therapeutic targets for diabetes.
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