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Published on: January 31, 2012
miR-21 attenuated inflammation targeting MyD88 in human chondrocytes stimulated with Hyaluronan oligosaccharides
Michele Scuruchi1, Angela Avenoso2, Federica Aliquò2
1Department of Clinical and Experimental Medicine, University of Messina, 98122 Messina, Italy.
Abstract:
Inflammation is the body's response to injuries, which depends on numerous regulatory factors. Among them, miRNAs have gained much attention for their role in regulating inflammatory gene expression at multiple levels. In particular, miR-21 is up-regulated during the inflammatory response and reported to be involved in the resolution of inflammation by down-regulating pro-inflammatory mediators, including MyD88. Herein, we evaluated the regulatory effects of miR-21 on the TLR-4/MyD88 pathway in an in vitro model of 6-mer HA oligosaccharides-induced inflammation in human chondrocytes. The exposition of chondrocytes to 6-mer HA induced the activation of the TLR4/MyD88 pathway, which culminates in NF-kB activation. Changes in miR-21, TLR-4, MyD88, NLRP3 inflammasome, IL-29, Caspase1, MMP-9, iNOS, and COX-2 mRNA expression of 6-mer HA-stimulated chondrocytes were examined by qRT-PCR. Protein amounts of TLR-4, MyD88, NLRP3 inflammasome, p-ERK1/2, p-AKT, IL-29, caspase1, MMP-9, p-NK-kB p65 subunit, and IKB-a have been evaluated by ELISA kits. NO and PGE2 levels have been assayed by colorimetric and ELISA kits, respectively. HA oligosaccharides induced a significant increase in the expression of the above parameters, including NF-kB activity. The use of a miR-21 mimic attenuated MyD88 expression levels and the downstream effectors. On the contrary, treatment with a miR-21 inhibitor induced opposite effects. Interestingly, the use of a MyD88 siRNA confirmed MyD88 as the target of miR-21 action. Our results suggest that miR-21 expression could increase in an attempt to reduce the inflammatory response, targeting MyD88.
Insights
MicroRNA-21 (miR-21) plays a crucial role in resolving inflammation by targeting MyD88. This study demonstrates miR-21
Area of Science:
- Molecular Biology
- Immunology
- Cell Biology
Background:
- Inflammation is a complex biological response involving numerous regulatory factors.
- MicroRNAs (miRNAs) are key regulators of inflammatory gene expression.
- miR-21 is implicated in inflammation resolution by down-regulating pro-inflammatory mediators like MyD88.
Purpose of the Study:
- To investigate the regulatory role of miR-21 on the Toll-like receptor 4 (TLR-4)/MyD88 pathway.
- To examine the effects of miR-21 on inflammation induced by 6-mer hyaluronic acid (HA) oligosaccharides in human chondrocytes.
Main Methods:
- Human chondrocytes were stimulated with 6-mer HA oligosaccharides to induce inflammation.
- Quantitative real-time PCR (qRT-PCR) and ELISA kits were used to measure mRNA and protein expression levels.
- miR-21 mimic, miR-21 inhibitor, and MyD88 siRNA were employed to assess regulatory effects.
Main Results:
- 6-mer HA oligosaccharides activated the TLR-4/MyD88 pathway, leading to NF-kB activation and increased inflammatory markers (e.g., IL-29, MMP-9, iNOS, COX-2).
- miR-21 mimic treatment attenuated MyD88 expression and downstream inflammatory effectors.
- miR-21 inhibitor treatment produced opposite effects, and MyD88 siRNA confirmed MyD88 as a direct target of miR-21.
Conclusions:
- miR-21 expression is upregulated during HA oligosaccharide-induced inflammation in chondrocytes.
- miR-21 acts to reduce inflammation by targeting and down-regulating MyD88.
- This highlights a potential therapeutic role for miR-21 in managing inflammatory conditions.
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