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聚乳酸/生物矿物复合骨组织工程支架的3D打印

3D Printing of PLLA/Biomineral Composite Bone Tissue Engineering Scaffolds.

作者信息

Gang Fangli, Ye Weilong, Ma Chunyang, Wang Wenting, Xiao Yi, Liu Chang, Sun Xiaodan

机构信息

Department of Biology, Xinzhou Teachers University, Xinzhou 034000, China.

Beijing Key Laboratory of Tooth Regeneration and Function Reconstruction, Beijing Stomatological Hospital, School of Stomatology, Capital Medical University, Beijing 100050, China.

出版信息

Materials (Basel). 2022 Jun 17;15(12):4280. doi: 10.3390/ma15124280.

Abstract

Tissue engineering is one of the most effective ways to treat bone defects in recent years. However, current highly active bone tissue engineering (BTE) scaffolds are mainly based on the addition of active biological components (such as growth factors) to promote bone repair. High cost, easy inactivation and complex regulatory requirements greatly limit their practical applications. In addition, conventional fabrication methods make it difficult to meet the needs of personalized customization for the macroscopic and internal structure of tissue engineering scaffolds. Herein, this paper proposes to select five natural biominerals (eggshell, pearl, turtle shell, degelatinated deer antler and cuttlebone) with widely available sources, low price and potential osteo-inductive activity as functional particles. Subsequently compounding them into L-polylactic acid (PLLA) biomaterial ink to further explore 3D printing processes of the composite scaffold, and reveal their potential as biomimetic 3D scaffolds for bone tissue repair. The research results of this project provide a new idea for the construction of a 3D scaffold with growth-factor-free biomimetic structure, personalized customization ability and osteo-inductive activity.

摘要

组织工程是近年来治疗骨缺损最有效的方法之一。然而,目前高活性骨组织工程(BTE)支架主要基于添加活性生物成分(如生长因子)来促进骨修复。高成本、易失活和复杂的监管要求极大地限制了它们的实际应用。此外,传统制造方法难以满足组织工程支架宏观和内部结构个性化定制的需求。在此,本文提出选择五种来源广泛、价格低廉且具有潜在骨诱导活性的天然生物矿物(蛋壳、珍珠、龟壳、脱胶鹿角和乌贼骨)作为功能颗粒。随后将它们复合到L-聚乳酸(PLLA)生物材料墨水中,进一步探索复合支架的3D打印工艺,并揭示其作为骨组织修复仿生3D支架的潜力。本项目的研究结果为构建具有无生长因子仿生结构、个性化定制能力和骨诱导活性的3D支架提供了新思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81b4/9228366/e613528f2b09/materials-15-04280-g001.jpg

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