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用于生物医学应用的藻酸盐/明胶水凝胶的设计:在保留其他细胞行为的同时微调牙髓干细胞的成骨作用。

Design of Alginate/Gelatin Hydrogels for Biomedical Applications: Fine-Tuning Osteogenesis in Dental Pulp Stem Cells While Preserving Other Cell Behaviors.

作者信息

Ferjaoui Zied, López-Muñoz Roberto, Akbari Soheil, Chandad Fatiha, Mantovani Diego, Rouabhia Mahmoud, D Fanganiello Roberto

机构信息

Oral Ecology Research Group (GREB), Faculté de Médecine Dentaire, Université Laval, Québec City, QC G1V 0A6, Canada.

Laboratory for Biomaterials and Bioengineering, (CRC-Tier I), Department of Min-Met-Materials Eng and Regenerative Medicine, CHU de Quebec, Laval University, Quebec City, QC G1V 0A6, Canada.

出版信息

Biomedicines. 2024 Jul 8;12(7):1510. doi: 10.3390/biomedicines12071510.

Abstract

Alginate/gelatin (Alg-Gel) hydrogels have been used experimentally, associated with mesenchymal stromal/stem cells (MSCs), to guide bone tissue formation. One of the main challenges for clinical application is optimizing Alg-Gel stiffness to guide osteogenesis. In this study, we investigated how Alg-Gel stiffness could modulate the dental pulp stem cell (DPSC) attachment, morphology, proliferation, and osteogenic differentiation, identifying the optimal conditions to uncouple osteogenesis from the other cell behaviors. An array of Alg-Gel hydrogels was prepared by casting different percentages of alginate and gelatin cross-linked with 2% CaCl. We have selected two hydrogels: one with a stiffness of 11 ± 1 kPa, referred to as "low-stiffness hydrogel", formed by 2% alginate and 8% gelatin, and the other with a stiffness of 55 ± 3 kPa, referred to as "high-stiffness hydrogel", formed by 8% alginate and 12% gelatin. Hydrogel analyses showed that the average swelling rates were 20 ± 3% for the low-stiffness hydrogels and 35 ± 2% for the high-stiffness hydrogels. The degradation percentage was 47 ± 5% and 18 ± 2% for the low- and high-stiffness hydrogels, respectively. Both hydrogel types showed homogeneous surface shape and protein (Alg-Gel) interaction with CaCl as assessed by physicochemical characterization. Cell culture showed good adhesion of the DPSCs to the hydrogels and proliferation. Furthermore, better osteogenic activity, determined by ALP activity and ARS staining, was obtained with high-stiffness hydrogels (8% alginate and 12% gelatin). In summary, this study confirms the possibility of characterizing and optimizing the stiffness of Alg-Gel gel to guide osteogenesis in vitro without altering the other cellular properties of DPSCs.

摘要

藻酸盐/明胶(Alg-Gel)水凝胶已在实验中与间充质基质/干细胞(MSCs)联合使用,以引导骨组织形成。临床应用的主要挑战之一是优化Alg-Gel的硬度以引导成骨。在本研究中,我们研究了Alg-Gel硬度如何调节牙髓干细胞(DPSC)的附着、形态、增殖和成骨分化,确定了将成骨与其他细胞行为解耦的最佳条件。通过浇铸不同百分比的藻酸盐和与2%氯化钙交联的明胶制备了一系列Alg-Gel水凝胶。我们选择了两种水凝胶:一种硬度为11±1 kPa,称为“低硬度水凝胶”,由2%藻酸盐和8%明胶形成;另一种硬度为55±3 kPa,称为“高硬度水凝胶”,由8%藻酸盐和12%明胶形成。水凝胶分析表明,低硬度水凝胶的平均溶胀率为20±3%,高硬度水凝胶为35±2%。低硬度和高硬度水凝胶的降解百分比分别为47±5%和18±2%。通过物理化学表征评估,两种水凝胶类型均显示出均匀的表面形状以及蛋白质(Alg-Gel)与氯化钙的相互作用。细胞培养显示DPSC与水凝胶具有良好的粘附性和增殖能力。此外,通过碱性磷酸酶(ALP)活性和茜素红染色(ARS)测定,高硬度水凝胶(8%藻酸盐和12%明胶)具有更好的成骨活性。总之,本研究证实了表征和优化Alg-Gel凝胶硬度以在体外引导成骨而不改变DPSC其他细胞特性的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a989/11274465/908506b89aeb/biomedicines-12-01510-g001.jpg

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