Extracellular Matrix Mimicking Wound Microenvironment Responsive Amyloid–Heparin@TAAgNP Co-Assembled Hydrogel: An Effective Conductive Antibacterial Wound Healing Material

材料科学 生物材料 细胞外基质 伤口愈合 肝素 自愈水凝胶 血管生成 纳米技术 生物医学工程 生物物理学 化学 生物化学 高分子化学 癌症研究 医学 免疫学 生物
作者
Nabanita Mukherjee,Satyajit Ghosh,Satyajit Ghosh,Rajsekhar Roy,Dipro Mukherjee,S. P. Sen,Debasmita Nandi,Jayita Sarkar,Surajit Ghosh,Surajit Ghosh
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (24): 30929-30957 被引量:15
标识
DOI:10.1021/acsami.4c05559
摘要

Bioengineered composite hydrogel platforms made of a supramolecular coassembly have recently garnered significant attention as promising biomaterial-based healthcare therapeutics. The mechanical durability of amyloids, in conjunction with the structured charged framework rendered by biologically abundant key ECM component glycosaminoglycan, enables us to design minimalistic customized biomaterial suited for stimuli responsive therapy. In this study, by harnessing the heparin sulfate-binding aptitude of amyloid fibrils, we have constructed a pH-responsive extracellular matrix (ECM) mimicking hydrogel matrix. This effective biocompatible platform comprising heparin sulfate-amyloid coassembled hydrogel embedded with polyphenol functionalized silver nanoparticles not only provide a native skin ECM-like conductive environment but also provide wound-microenvironment responsive on-demand superior antibacterial efficacy for effective diabetic wound healing. Interestingly, both the cytocompatibility and antibacterial properties of this bioinspired matrix can be fine-tuned by controlling the mutual ratio of heparin sulfate-amyloid and incubated silver nanoparticle components, respectively. The designed biomaterial platform exhibits notable effectiveness in the treatment of chronic hyperglycemic wounds infected with multidrug-resistant bacteria, because of the integration of pH-responsive release characteristics of the incubated functionalized AgNP and the antibacterial amyloid fibrils. In addition to this, the aforementioned assemblage shows exceptional hemocompatibility with significant antibiofilm and antioxidant characteristics. Histological evidence of the incised skin tissue sections indicates that the fabricated composite hydrogel is also effective in controlling pro-inflammatory cytokines such as IL6 and TNFα expressions at the wound vicinity with significant upregulation of angiogenesis markers like CD31 and α-SMA.
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