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掺入交联明胶微粒以增强用于软骨工程的羧化琼脂糖水凝胶生物墨水中的细胞附着和软骨形成。

Incorporation of Cross-Linked Gelatin Microparticles To Enhance Cell Attachment and Chondrogenesis in Carboxylated Agarose Bioinks for Cartilage Engineering.

作者信息

Qian Yi, Gu Yawei, Tribukait-Riemenschneider Fabian, Martin Ivan, Shastri V Prasad

机构信息

Institute for Macromolecular Chemistry, University of Freiburg, Freiburg 79104, Germany.

Department of Biomedicine, Tissue Engineering Laboratory, University Hospital Basel, University of Basel, Basel 4031, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2025 Apr 16;17(15):22293-22307. doi: 10.1021/acsami.5c00077. Epub 2025 Apr 7.

Abstract

Due to the limited regenerative capacity of injured cartilage, surgical intervention using engineered cellular constructs or autologous cell implantation is the best accredited approach to prevent further degeneration and promote a regenerative microenvironment. Advancements in additive manufacturing present opportunities for graft customization through enhanced scaffold design. In bioprinting, an additive manufacturing process, the "bioink" serves as the medium to carry cells but also as a scaffold by imparting form and mechanical attributes to the printed object. In this study, the impact of cross-linked gelatin microparticles (GMPs) on rheological properties and printability of carboxylated agarose (CA) bioink as well as matrix deposition by human nasal chondrocytes (hNCs) was investigated. The introduction of GMPs yielded stiffer bioink formulations, with lower sol-gel transitions that retained the exceptional printability of CA. GMPs served as foci for the attachment of hNCs, improving cellular distribution and bridging the deposited extracellular matrix. After 4 weeks in chondrogenic culture, GMPs containing printed constructs showed enhanced toughness approaching that of the lower end of the spectrum of native cartilage tissue. The incorporation of proteinaceous microparticles might serve as a general concept to promote cellular function in polysaccharide-based bioinks and opens another avenue for engineering 3D-bioprinted microenvironments.

摘要

由于受损软骨的再生能力有限,使用工程化细胞构建体或自体细胞植入的手术干预是预防进一步退变和促进再生微环境的最佳认可方法。增材制造的进展为通过改进支架设计实现移植物定制提供了机会。在生物打印(一种增材制造工艺)中,“生物墨水”不仅作为携带细胞的介质,还通过赋予打印物体形状和机械特性而充当支架。在本研究中,研究了交联明胶微粒(GMPs)对羧化琼脂糖(CA)生物墨水的流变学特性和可打印性以及人鼻软骨细胞(hNCs)的基质沉积的影响。GMPs的引入产生了更硬的生物墨水配方,其溶胶-凝胶转变温度更低,同时保留了CA出色的可打印性。GMPs作为hNCs附着的焦点,改善了细胞分布并连接了沉积的细胞外基质。在软骨形成培养4周后,含有GMPs的打印构建体显示出韧性增强,接近天然软骨组织范围下限的韧性。蛋白质微粒的掺入可能是促进基于多糖的生物墨水中细胞功能的一个通用概念,并为工程化3D生物打印微环境开辟了另一条途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4ea/12012782/f93d632577b9/am5c00077_0001.jpg

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