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Triple-emulsion microfluidic Core-Shell hydrogel microcapsules for oral pentoxifylline Delivery: Ameliorating colitis
Ji-Yeon Park1, Hye-Seon Jeong2, Seong-Ryeong Lim1
1Major of Human Bio-convergence, Division of Smart Healthcare, Pukyong National University, Busan, 48513, Republic of Korea.
Abstract:
Inflammatory bowel disease (IBD) encompasses chronic or relapsing inflammation within different regions of the gastrointestinal tract. Pentoxifylline (PTX), a methylxanthine derivative primarily used to improve blood flow in peripheral vascular diseases, has demonstrated anti-inflammatory and immunomodulatory properties, suggesting its potential in attenuating IBD-associated inflammation. However, its clinical application in IBD remains limited, partly due to its short half-life and poor targeting to inflamed intestinal tissues, necessitating strategies to enhance its bioavailability and tissue-specific delivery. To address this limitation, we developed a targeted drug delivery system utilizing a microfluidic approach to fabricate pH-responsive core-shell hydrogel microcapsules encapsulating PTX, referred to as PTX-loaded hydrogel microcapsules (PHM), for enhanced delivery to inflamed colonic tissue. These microcapsules were generated via photopolymerization of triple emulsion droplets, resulting in a structure composed of a poly (acrylic acid)-poly (ethylene glycol) diacrylate (PAA-PEGDA) shell and a PEGDA core, separated by a thin oil layer. The oil layer serves as a protective barrier against the acidic gastric environment, while the pH-responsive swelling of the PAA-PEGDA shell at basic pH (7.5) compresses and destabilizes the oil layer, thereby enabling controlled PTX release specifically in the colonic environment. In vivo studies using dextran sulfate sodium (DSS)-induced IBD in ICR mice demonstrate that PHM significantly mitigates disease severity, as evidenced by an approximately 38.5% reduction in disease activity index scores, restoration of mucosal architecture, and decreased infiltration of colonic macrophages. In parallel, PHM treatment markedly suppresses colonic inflammatory responses, lowering IL-1β by 40%, IL-6 by 66.2%, and TNF-α by 36.2% compared to DSS-treated mice, along with a broader reduction of pro-inflammatory mediators, highlighting its anti-inflammatory potential. Notably, PHM also contributes to the rebalancing of dysbiotic gut microbiota, including the restoration of beneficial genera such as Bacteroides acidifaciens and PAC001120_s, thereby promoting microbial homeostasis. Collectively, these findings underscore PHM as a promising PTX-based therapeutic strategy for effective IBD intervention.
Insights
New hydrogel microcapsules deliver Pentoxifylline (PTX) effectively to the colon, reducing inflammatory bowel disease (IBD) severity and restoring gut microbiota balance. This targeted approach enhances PTX
Area of Science:
- Biomedical Engineering
- Drug Delivery Systems
- Gastroenterology
Background:
- Inflammatory bowel disease (IBD) is characterized by chronic gastrointestinal inflammation.
- Pentoxifylline (PTX) has anti-inflammatory properties but limited clinical use in IBD due to poor bioavailability and targeting.
- Targeted delivery systems are needed to enhance PTX efficacy for IBD treatment.
Purpose of the Study:
- To develop pH-responsive hydrogel microcapsules for targeted delivery of Pentoxifylline (PTX) to inflamed colonic tissue.
- To evaluate the therapeutic efficacy of PTX-loaded hydrogel microcapsules (PHM) in a mouse model of IBD.
Main Methods:
- Fabrication of core-shell hydrogel microcapsules (PAA-PEGDA/PEGDA) via microfluidics and photopolymerization.
- Development of pH-responsive drug release mechanism triggered by colonic environment.
- Assessment of PHM efficacy in dextran sulfate sodium (DSS)-induced IBD mice, measuring disease activity, histology, inflammatory markers, and gut microbiota composition.
Main Results:
- PHM significantly reduced IBD disease activity index by 38.5%, restored mucosal architecture, and decreased macrophage infiltration.
- PHM treatment suppressed key inflammatory cytokines (IL-1β, IL-6, TNF-α) by 40%, 66.2%, and 36.2%, respectively.
- PHM promoted gut microbiota homeostasis, restoring beneficial bacteria like Bacteroides acidifaciens.
Conclusions:
- pH-responsive hydrogel microcapsules provide an effective strategy for targeted PTX delivery in IBD.
- PHM demonstrates significant therapeutic potential in mitigating IBD inflammation and restoring gut microbial balance.
- This targeted drug delivery system offers a promising approach for future IBD interventions.
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