4.8 Article

Modular design of a hybrid hydrogel for protease-triggered enhancement of drug delivery to regulate TNF-α production by pro-inflammatory macrophages

期刊

ACTA BIOMATERIALIA
卷 117, 期 -, 页码 167-179

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2020.09.026

关键词

Matrix-metalloprotease-9; Protease-triggered; Modular design; Hydrogel; TNF-alpha secretion; Drug delivery

资金

  1. Ageing Research Institute for Society and Education (ARISE), Nanyang Technological University (NTU), Singapore [ARISE/2017/16, M4082061.120]
  2. NTU Startup Grant [M4081759.120]
  3. Singapore Ministry of Education Academic Tier 1 Grant [M4011637.120]
  4. Agency for Science, Technology and Research (A* STAR) under its Industry Alignment Fund -Pre-Positioning Programme (IAF-PP) [H19/01/a0/HH9]
  5. Wound Care Innovations for the Tropics (WCIT) Programme
  6. NTU Research Scholarship

向作者/读者索取更多资源

Systemic drug administration has conventionally been prescribed to alleviate persistent local inflammation which is prevalent in chronic diseases. However, this approach is associated with drug-induced toxicity, particularly when the dosage exceeds that necessitated by pathological conditions of diseased tissues. Herein, we developed a modular hybrid hydrogel which could be triggered to release an anti-inflammatory drug upon exposure to elevated protease activity associated with inflammatory diseases. Modular design of the hybrid hydrogel enabled independent optimization of its protease-cleavable and drug-loaded subdomains to facilitate hydrogel formation, cleavability by matrix-metalloprotease-9 (MMP-9), and tuning drug release rate. In vitro study demonstrated the protease-triggered enhancement of drug release from the hybrid hydrogel system for effective inhibition of TNF-alpha production by pro-inflammatory macrophages and suggested its potential to mitigate drug-induced cytotoxicity. Using non-invasive imaging to monitor the activity of reactive oxygen species in biomaterial-induced host response, we confirmed that the hybrid hydrogel and its constituent materials did not induce adverse immune response after 5 days following their subcutaneous injection in immuno-competent mice. We subsequently incorporated this hybrid hydrogel onto a commercial wound dressing which could release the drug upon exposure to MMP-9. Together, our findings suggested that this hybrid hydrogel might be a versatile platform for on-demand drug delivery via either injectable or topical application to modulate inflammation in chronic diseases. (C) 2020 Published by Elsevier Ltd on behalf of Acta Materialia Inc.

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