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通过对三维脱细胞真皮基质进行生物活性和生物力学修饰来增强软骨再生与修复。

Enhancing cartilage regeneration and repair through bioactive and biomechanical modification of 3D acellular dermal matrix.

作者信息

Gao Wei, Cheng Tan, Tang Zhengya, Zhang Wenqiang, Xu Yong, Han Min, Zhou Guangdong, Tao Chunsheng, Xu Ning, Xia Huitang, Sun Weijie

机构信息

Qingdao Medical College of Qingdao University, Qingdao, 266071, China.

Department of Cardiothoracic Surgery, Shanghai Children's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200040, China.

出版信息

Regen Biomater. 2024 Feb 5;11:rbae010. doi: 10.1093/rb/rbae010. eCollection 2024.

Abstract

Acellular dermal matrix (ADM) shows promise for cartilage regeneration and repair. However, an effective decellularization technique that removes cellular components while preserving the extracellular matrix, the transformation of 2D-ADM into a suitable 3D scaffold with porosity and the enhancement of bioactive and biomechanical properties in the 3D-ADM scaffold are yet to be fully addressed. In this study, we present an innovative decellularization method involving 0.125% trypsin and 0.5% SDS and a 1% Triton X-100 solution for preparing ADM and converting 2D-ADM into 3D-ADM scaffolds. These scaffolds exhibit favorable physicochemical properties, exceptional biocompatibility and significant potential for driving cartilage regeneration and . To further enhance the cartilage regeneration potential of 3D-ADM scaffolds, we incorporated porcine-derived small intestinal submucosa (SIS) for bioactivity and calcium sulfate hemihydrate (CSH) for biomechanical reinforcement. The resulting 3D-ADM+SIS scaffolds displayed heightened biological activity, while the 3D-ADM+CSH scaffolds notably bolstered biomechanical strength. Both scaffold types showed promise for cartilage regeneration and repair and , with considerable improvements observed in repairing cartilage defects within a rabbit articular cartilage model. In summary, this research introduces a versatile 3D-ADM scaffold with customizable bioactive and biomechanical properties, poised to revolutionize the field of cartilage regeneration.

摘要

脱细胞真皮基质(ADM)在软骨再生和修复方面显示出前景。然而,一种能去除细胞成分同时保留细胞外基质的有效脱细胞技术、将二维ADM转化为具有孔隙率的合适三维支架以及增强三维ADM支架的生物活性和生物力学性能等问题尚未得到充分解决。在本研究中,我们提出了一种创新的脱细胞方法,该方法涉及使用0.125%的胰蛋白酶、0.5%的十二烷基硫酸钠(SDS)和1%的 Triton X - 100溶液来制备ADM并将二维ADM转化为三维ADM支架。这些支架具有良好的物理化学性质、出色的生物相容性以及驱动软骨再生的巨大潜力。为了进一步提高三维ADM支架的软骨再生潜力,我们加入了猪源小肠黏膜下层(SIS)以增强生物活性,并加入半水硫酸钙(CSH)以增强生物力学性能。所得的三维ADM + SIS支架表现出更高的生物活性,而三维ADM + CSH支架显著增强了生物力学强度。两种支架类型在软骨再生和修复方面都显示出前景,并且在兔关节软骨模型中修复软骨缺损方面观察到了相当大的改善。总之,本研究引入了一种具有可定制生物活性和生物力学性能的多功能三维ADM支架,有望彻底改变软骨再生领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c2e/10898337/5eecf1fa1a9a/rbae010f9.jpg

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