ECM-enriched alginate hydrogels for bioartificial pancreas: an ideal niche to improve insulin secretion and diabetic glucose profile

J. Crisóstomo, A. Pereira, S. Bidarra, A. Gonçalves, P. Granja, Jorge F. J. Coelho, C. Barrias, Raquel Seiça
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引用次数: 13

Abstract

Introduction: The success of a bioartificial pancreas crucially depends on ameliorating encapsulated beta cells survival and function. By mimicking the cellular in vivo niche, the aim of this study was to develop a novel model for beta cells encapsulation capable of establishing an appropriate microenvironment that supports interactions between cells and extracellular matrix (ECM) components. Methods: ECM components (Arg-Gly-Asp, abbreviated as RGD) were chemically incorporated in alginate hydrogels (alginate-RGD). After encapsulation, INS-1E beta cells outcome was analyzed in vitro and after their implantation in an animal model of diabetes. Results: Our alginate-RGD model demonstrated to be a good in vitro niche for supporting beta cells viability, proliferation, and activity, namely by improving the key feature of insulin secretion. RGD peptides promoted cell–matrix interactions, enhanced endogenous ECM components expression, and favored the assembly of individual cells into multicellular spheroids, an essential configuration for proper beta cell functioning. In vivo, our pivotal model for diabetes treatment exhibited an improved glycemic profile of type 2 diabetic rats, where insulin secreted from encapsulated cells was more efficiently used. Conclusions: We were able to successfully introduce a novel valuable function in an old ally in biomedical applications, the alginate. The proposed alginate-RGD model stands out as a promising approach to improve beta cells survival and function, increasing the success of this therapeutic strategy, which might greatly improve the quality of life of an increasing number of diabetic patients worldwide.
富含ecm的海藻酸盐水凝胶用于生物人工胰腺:改善胰岛素分泌和糖尿病血糖谱的理想利基
生物人工胰腺的成功关键取决于改善包封β细胞的存活和功能。通过模拟细胞在体内的生态位,本研究的目的是开发一种新的β细胞封装模型,该模型能够建立一个适当的微环境,支持细胞和细胞外基质(ECM)成分之间的相互作用。方法:将ECM成分(Arg-Gly-Asp,简称RGD)化学掺入到海藻酸盐水凝胶(algate -RGD)中。在体外和糖尿病动物模型中植入INS-1E β细胞,分析其包封后的结果。结果:我们的海藻酸盐- rgd模型被证明是一个很好的体外生态位,可以支持β细胞的活力、增殖和活性,即通过改善胰岛素分泌的关键特征。RGD肽促进细胞-基质相互作用,增强内源性ECM成分的表达,并有利于单个细胞组装成多细胞球体,这是正常β细胞功能的基本配置。在体内,我们的糖尿病治疗关键模型显示2型糖尿病大鼠的血糖谱得到改善,其中包被细胞分泌的胰岛素被更有效地利用。结论:我们能够成功地在生物医学应用的老盟友中引入一种新的有价值的功能,海藻酸盐。提出的海藻酸盐- rgd模型作为一种有希望改善β细胞存活和功能的方法,增加了这种治疗策略的成功率,这可能会极大地改善全世界越来越多的糖尿病患者的生活质量。
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
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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