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基于丝素蛋白的水凝胶-纤维-水凝胶复合支架,具有氧和槲皮素的双重递送功能。

A hydrogel-fiber-hydrogel composite scaffold based on silk fibroin with the dual-delivery of oxygen and quercetin.

机构信息

Biomaterials and Tissue Engineering Group, Department of Materials Science and Engineering, Kroto Research Institute, The University of Sheffield, Sheffield, UK.

Biomedical Engineering Department, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran.

出版信息

Biotechnol Bioeng. 2023 Jan;120(1):297-311. doi: 10.1002/bit.28259. Epub 2022 Oct 28.

Abstract

Supplying sufficient oxygen within the scaffolds is one of the essential hindrances in tissue engineering that can be resolved by oxygen-generating biomaterials (OGBs). Two main issues related to OGBs are controlling oxygenation and reactive oxygen species (ROS). To address these concerns, we developed a composite scaffold entailing three layers (hydrogel-electrospun fibers-hydrogel) with antioxidant and antibacterial properties. The fibers, the middle layer, reinforced the composite structure, enhancing the mechanical strength from 4.27 ± 0.15 to 8.27 ± 0.25 kPa; also, this layer is made of calcium peroxide and silk fibroin (SF) through electrospinning, which enables oxygen delivery. The first and third layers are physical SF hydrogels to control oxygen release, containing quercetin (Q), a nonenzymatic antioxidant. This composite scaffold resulted in almost more than 40 mmHg of oxygen release for at least 13 days, and compared with similar studies is in a high range. Here, Q was used for the first time for an OGB to scavenge the possible ROS. Q delivery not only led to antioxidant activity but also stabilized oxygen release and enhanced cell viability. Based on the given results, this composite scaffold can be introduced as a safe and controllable oxygen supplier, which is promising for tissue engineering applications, particularly for bone.

摘要

在组织工程中,为支架提供充足的氧气是一个基本的障碍,这可以通过产氧生物材料(OGBs)来解决。与 OGBs 相关的两个主要问题是控制氧合和活性氧物质(ROS)。为了解决这些问题,我们开发了一种包含三层(水凝胶-静电纺纤维-水凝胶)的具有抗氧化和抗菌性能的复合支架。纤维,即中间层,增强了复合结构,使机械强度从 4.27±0.15kPa 提高到 8.27±0.25kPa;此外,该层通过静电纺丝由过氧化钙和丝素蛋白(SF)制成,从而能够输送氧气。第一层和第三层是物理 SF 水凝胶,用于控制氧气释放,其中包含槲皮素(Q),一种非酶抗氧化剂。这种复合支架在至少 13 天内释放的氧气量超过 40mmHg,与类似的研究相比处于较高水平。在这里,Q 首次被用于 OGB 来清除可能的 ROS。Q 的输送不仅导致了抗氧化活性,还稳定了氧气释放并提高了细胞活力。根据给出的结果,这种复合支架可以作为一种安全可控的氧气供应源,有望在组织工程应用中得到应用,特别是在骨组织工程中。

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