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Immunomodulatory injectable silk hydrogels maintaining functional islets and promoting anti-inflammatory M2 macrophage polarization

机译:免疫调节可注射丝水凝胶维持功能性胰岛和促进抗炎M2巨噬细胞极化

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摘要

Islet transplantation is considered the most promising treatment for type 1 diabetes. However, the clinical success is limited by islet dysfunction in long-term culture. In this study, we have utilized the rapid self-gelation and injectability offered by blending of mulberry silk (Bombyx mori) with non-mulberry (Antheraea assama) silk, resulting in a biomimetic hydrogel. Unlike the previously reported silk gelation techniques, the differences in amino acid sequences of the two silk varieties result in accelerated gelation without requiring any external stimulus. Gelation study and rheological assessment depicts tuneable gelation as a function of protein concentration and blending ratio with minimum gelation time.In vitrobiological results reveal that the blended hydrogels provide an ideal 3D matrix for primary rat islets. Also,A. assamafibroin with inherent Arg-Gly-Asp (RGD) shows significant influence on islet viability, insulin secretion and endothelial cell maintenance. Furthermore, utility of these hydrogels demonstrate sustained release of Interleukin-4 (IL-4) and Dexamethasone with effective M2 macrophage polarization while preserving islet physiology. The immuno-informed hydrogel demonstrates local modulation of inflammatory responsesin vivo. Altogether, the results exhibit promising attributes of injectable silk hydrogel and the utility of non-mulberry silk fibroin as an alternative biomaterial for islet encapsulation.
机译:胰岛移植被认为是1型糖尿病的最有希望的治疗方法。然而,临床成功受到长期培养中的胰岛功能障碍的限制。在这项研究中,我们利用了用非桑树(Antheraea Assama)丝绸混合桑椹丝(Bombyx Mori)提供的快速自凝胶化和可注射性,导致生物微米水凝胶。与先前报道的丝绸凝胶化技术不同,两种丝绸品种的氨基酸序列的差异导致加速凝胶化而不需要任何外部刺激。凝胶化研究和流变评估描述了作为蛋白质浓度和混合比率的可调可视凝胶化与最小凝胶化时间。螺旋虫学结果表明,混合水凝胶为原代大鼠胰岛提供了理想的3D基质。也。 assamafibroin具有固有的arg-gly-Asp(RGD)显示对胰岛活力,胰岛素分泌和内皮细胞维持的显着影响。此外,这些水凝胶的效用表明白细胞介素-4(IL-4)和地塞米松的持续释放,具有有效的M2巨噬细胞极化,同时保持胰岛生理学。免疫接受的水凝胶证明了炎症反应的局部调节体内。总共,结果表现出可注射丝水凝胶的有希望的属性,以及非桑椹丝素蛋白的效用作为胰岛包封的替代生物材料。

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