Fabrication of cell-laden hydrogel microcapsules of alginate and chitin fibrils using divalent and trivalent metal ions

IF 3.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-04-22 DOI:10.1039/D5RA01397F
Thakur Sapkota, Sita Shrestha, Bishnu P. Regmi and Narayan Bhattarai
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引用次数: 0

Abstract

Nanofiber-embedded 3D hydrogel constructs have garnered significant attention due to their versatile applications in drug delivery, cell therapy, tissue engineering, and regenerative medicine. These constructs are especially prized for their capacity to mimic the composition of the extracellular matrix (ECM) found in living tissues and organs. The unique chemical and mechanical properties of hydrogel microcapsules have made them particularly notable among various biomaterial constructs for their effectiveness in cell encapsulation, which aims to improve cell growth and proliferation. In this study, we developed alginate hydrogel microcapsules embedded with chitin nanofibrils, using divalent calcium ions and trivalent iron ions as crosslinking agents. An electrostatic encapsulation technique was utilized to create microcapsules with diameters ranging from 200–500 μm, and their physicochemical properties, rheological properties, size, and mechanical stability were evaluated. The rheological analysis demonstrated that the Fe3+ crosslinked hydrogel (AF0) and Fe3+/Ca2+ cross-linked hydrogel (AFC) have higher storage modulus than the Ca2+ crosslinked hydrogel (AC0). Additionally, FTIR analyses of AF0 and AFC demonstrated a broader –O–H stretching peak compared to that of AC0, suggesting that more hydroxyl groups of alginate chains are involved in crosslinking with ferric ions exhibiting extended mechanical stability compared to those crosslinked with calcium ions under in vitro physiological conditions. We also investigated the cellular responses to the composite hydrogels crosslinked with these divalent and trivalent metal ions through in vitro studies involving the seeding and encapsulation of NIH/3T3 fibroblast cells. Remarkably, both types of crosslinked microcapsules maintained excellent cell viability for up to 5 days. Our in vitro scratch assay demonstrated that media extracted from AF0 microcapsules facilitated faster wound closure compared to that extracted from AC0, suggesting that hydrogels crosslinked with Fe3+ ions promote enhanced cellular proliferation. These results suggest that calcium and ferric ion crosslinked alginate–chitin composite microcapsules provide a promising platform for developing 3D hydrogel constructs suitable for various biomedical applications, including wound healing models, tissue engineering, and drug toxicity testing.

用二价和三价金属离子制备海藻酸盐和几丁质原纤维载细胞水凝胶微胶囊
纳米纤维嵌入的三维水凝胶结构由于其在药物输送、细胞治疗、组织工程和再生医学中的广泛应用而引起了极大的关注。这些结构尤其因其模拟活组织和器官中细胞外基质(ECM)组成的能力而受到重视。水凝胶微胶囊独特的化学和机械性能使其在各种生物材料结构中特别引人注目,其有效的细胞包封,旨在促进细胞的生长和增殖。本研究以二价钙离子和三价铁离子为交联剂,制备了几丁质纳米原纤维包埋藻酸盐水凝胶微胶囊。采用静电封装技术制备了直径为200 ~ 500 μm的微胶囊,并对其理化性质、流变性能、尺寸和机械稳定性进行了评价。流变学分析表明,Fe3+交联水凝胶(AF0)和Fe3+/Ca2+交联水凝胶(AFC)比Ca2+交联水凝胶(AC0)具有更高的存储模量。此外,AF0和AFC的FTIR分析显示,与AC0相比,AF0和AFC的-O-H拉伸峰更宽,这表明在体外生理条件下,与钙离子交联相比,更多的海藻酸盐链羟基参与了与铁离子的交联,具有更大的机械稳定性。我们还通过体外研究研究了与这些二价和三价金属离子交联的复合水凝胶的细胞反应,包括NIH/3T3成纤维细胞的播种和包封。值得注意的是,两种类型的交联微胶囊在长达5天的时间内都保持了良好的细胞活力。我们的体外划痕实验表明,与AC0相比,从AF0微胶囊中提取的培养基可以更快地愈合伤口,这表明与Fe3+离子交联的水凝胶促进了细胞增殖。这些结果表明,钙铁离子交联海藻酸盐-几丁质复合微胶囊为开发适合各种生物医学应用的三维水凝胶结构提供了一个有前途的平台,包括伤口愈合模型、组织工程和药物毒性测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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