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用于骨组织工程的藻酸盐/羟基磷灰石基纳米复合支架可改善牙髓生物矿化和分化。

Alginate/Hydroxyapatite-Based Nanocomposite Scaffolds for Bone Tissue Engineering Improve Dental Pulp Biomineralization and Differentiation.

作者信息

Sancilio Silvia, Gallorini Marialucia, Di Nisio Chiara, Marsich Eleonora, Di Pietro Roberta, Schweikl Helmut, Cataldi Amelia

机构信息

Department of Pharmacy, University G. d'Annunzio, Chieti-Pescara, Italy.

Department of Medical, Oral and Biotechnological Sciences, University G. d'Annunzio, Chieti-Pescara, Italy.

出版信息

Stem Cells Int. 2018 Aug 2;2018:9643721. doi: 10.1155/2018/9643721. eCollection 2018.

Abstract

Tissue engineering is widely recognized as a promising approach for bone repair and reconstruction. Several attempts have been made to achieve materials that must be compatible, osteoconductive, and osteointegrative and have mechanical strength to provide a structural support. Composite scaffolds consisting in biodegradable natural polymers are very promising constructs. Hydroxyapatite (HAp) can support alginate as inorganic reinforcement and osteoconductive component of alginate/HAp composite scaffolds. Therefore, HAp-strengthened polymer biocomposites offer a solid system to engineer synthetic bone substitutes. In the present work, HAp was incorporated into an alginate solution and internal gelling was induced by addition of slowly acid-hydrolyzing D-gluconic acid delta-lactone for the direct release of calcium ions from HAp. It has been previously demonstrated that alginate-based composites efficiently support adhesion of cancer bone cell lines. Human dental pulp stem cells (DPSCs) identified in human dental pulp are clonogenic cells capable of differentiating in multiple lineage. Thus, this study is aimed at verifying the mineralization and differentiation potential of human DPSCs seeded onto scaffolds based on alginate and nano-hydroxyapatite. For this purpose, gene expression profile of early and late mineralization-related markers, extracellular matrix components, viability parameters, and oxidative stress occurrence were evaluated and analyzed. In summary, our data show that DPSCs express osteogenic differentiation-related markers and promote calcium deposition and biomineralization when growing onto Alg/HAp scaffolds. These findings confirm the use of Alg/HAp scaffolds as feasible composite materials in tissue engineering, being capable of promoting a specific and successful tissue regeneration as well as mineralized matrix deposition and sustaining natural bone regeneration.

摘要

组织工程被广泛认为是一种用于骨修复和重建的有前景的方法。人们已经进行了多次尝试,以获得具有相容性、骨传导性和骨整合性且具有机械强度以提供结构支撑的材料。由可生物降解的天然聚合物组成的复合支架是非常有前景的构建物。羟基磷灰石(HAp)可以作为无机增强剂和藻酸盐/HAp复合支架的骨传导成分来支撑藻酸盐。因此,HAp增强的聚合物生物复合材料为设计合成骨替代物提供了一个坚实的系统。在本研究中,将HAp掺入藻酸盐溶液中,并通过添加缓慢酸水解的D -葡萄糖酸δ -内酯诱导内部凝胶化,以使钙离子从HAp中直接释放出来。先前已经证明基于藻酸盐的复合材料能有效地支持癌骨细胞系的黏附。在人牙髓中鉴定出的人牙髓干细胞(DPSCs)是能够在多个谱系中分化的克隆细胞。因此,本研究旨在验证接种到基于藻酸盐和纳米羟基磷灰石的支架上的人DPSCs的矿化和分化潜能。为此,对早期和晚期矿化相关标志物、细胞外基质成分、活力参数以及氧化应激发生情况的基因表达谱进行了评估和分析。总之,我们的数据表明,当DPSCs在Alg/HAp支架上生长时,它们表达成骨分化相关标志物并促进钙沉积和生物矿化。这些发现证实了Alg/HAp支架作为组织工程中可行的复合材料的用途,能够促进特定且成功的组织再生以及矿化基质沉积并维持天然骨再生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da87/6098856/7988f2692015/SCI2018-9643721.001.jpg

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