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Published on: February 8, 2019
Macrophage targeted triptolide micelles capable of cGAS-STING pathway inhibition for rheumatoid arthritis treatment
Alan Xu1, Ruoxi Yang2, Mingfei Zhang1
1Jiangsu Key Laboratory for Pharmacology and Safety Evaluation of Chinese Materia Medica, School of Pharmacy, Nanjing University of Chinese Medicine, Nanjing, PR China.
Abstract:
The abundant M1 macrophages in the joint synovium were the main factors that exacerbate rheumatoid arthritis (RA) by secreting various types of inflammatory cytokines. Here, we note that cGAS-STING, an important pro-inflammatory pathway, was significantly up-regulated in RA, enabling it be the potential target for RA therapy. Therefore, in this work, we developed M1 macrophages targeted micelles capable of cGAS-STING pathway inhibition for the smart treatment of RA. The folic acid (FA) and lauric acid (LA) were modified on dextran to obtain an amphiphilic polymer (FDL). Then, FDL was subsequently applied to encapsulate triptolide (TP) to form FDL@TP nanomicelles. The FDL@TP could target the joint and enhance the cell uptake of TP by M1 macrophages (overexpressing folate receptor-β), which also reduced the side effects of TP on normal tissues. In M1 macrophages, the released TP, acted as an anti-inflammatory and immunosuppressant, obviously down-regulated the expressions of cGAS and STING protein, and thus reduced the secretion of TNF-α, IL-1β and IL-6. Importantly, compared with the same dose of free TP, FDL@TP could significantly enhance the anti-inflammatory effect. Therefore, FDL@TP nanomicelles were believed to be superior candidates for the clinical treatment of RA.
Insights
Targeted nanomicelles effectively deliver triptolide to M1 macrophages, inhibiting the cGAS-STING pathway and reducing inflammation for rheumatoid arthritis (RA) treatment.
Area of Science:
- Immunology
- Nanomedicine
- Rheumatology
Background:
- M1 macrophages drive rheumatoid arthritis (RA) inflammation via cytokine secretion.
- The cGAS-STING pathway is upregulated in RA and presents a therapeutic target.
Purpose of the Study:
- To develop M1 macrophage-targeted nanomicelles for RA treatment.
- To inhibit the cGAS-STING pathway for smart RA therapy.
Main Methods:
- Amphiphilic polymer (FDL) synthesized from dextran, folic acid (FA), and lauric acid (LA).
- FDL encapsulated triptolide (TP) to form FDL@TP nanomicelles.
- Targeting M1 macrophages (overexpressing folate receptor-β) for enhanced drug uptake and reduced side effects.
Main Results:
- FDL@TP nanomicelles effectively targeted joints and M1 macrophages.
- Triptolide released from nanomicelles downregulated cGAS and STING protein expression.
- Reduced secretion of pro-inflammatory cytokines (TNF-α, IL-1β, IL-6) in M1 macrophages.
- FDL@TP demonstrated enhanced anti-inflammatory effects compared to free triptolide.
Conclusions:
- FDL@TP nanomicelles show potential for targeted RA therapy by inhibiting the cGAS-STING pathway.
- This approach offers a promising strategy for managing RA with reduced systemic toxicity.
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