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间质干细胞和三维骨传导支架在猪的临界大小骨缺损中再生颅骨骨。

Mesenchymal stem cells and three-dimensional-osteoconductive scaffold regenerate calvarial bone in critical size defects in swine.

机构信息

Center for Craniofacial Molecular Biology, Herman Ostrow School of Dentistry, University of Southern California, Los Angeles, California, USA.

Department of Aerospace and Mechanical Engineering, School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, Arizona, USA.

出版信息

Stem Cells Transl Med. 2021 Aug;10(8):1170-1183. doi: 10.1002/sctm.20-0534. Epub 2021 Apr 1.

Abstract

Craniofacial bones protect vital organs, perform important physiological functions, and shape facial identity. Critical-size defects (CSDs) in calvarial bones, which will not heal spontaneously, are caused by trauma, congenital defects, or tumor resections. They pose a great challenge for patients and physicians, and significantly compromise quality of life. Currently, calvarial CSDs are treated either by allogenic or autologous grafts, metal or other synthetic plates that are associated with considerable complications. While previous studies have explored tissue regeneration for calvarial defects, most have been done in small animal models with limited translational value. Here we define a swine calvarial CSD model and show a novel approach to regenerate high-quality bone in these defects by combining mesenchymal stem cells (MSCs) with a three-dimensional (3D)-printed osteoconductive HA/TCP scaffold. Specifically, we have compared the performance of dental pulp neural crest MSCs (DPNCCs) to bone marrow aspirate (BMA) combined with a 3D-printed HA/TCP scaffold to regenerate bone in a calvarial CSD (>7.0 cm ). Both DPNCCs and BMA loaded onto the 3D-printed osteoconductive scaffold support the regeneration of calvarial bone with density, compression strength, and trabecular structures similar to native bone. Our study demonstrates a novel application of an original scaffold design combined with DPNCCs or BMA to support regeneration of high-quality bone in a newly defined and clinically relevant swine calvarial CSD model. This discovery may have important impact on bone regeneration beyond the craniofacial region and will ultimately benefit patients who suffer from debilitating CSDs.

摘要

颅面骨保护重要器官,发挥重要的生理功能,并塑造面部特征。颅骨的临界尺寸缺陷(CSD)不会自发愈合,这些缺陷是由创伤、先天缺陷或肿瘤切除引起的。它们给患者和医生带来了巨大的挑战,并严重影响了生活质量。目前,颅骨 CSD 的治疗方法是使用同种异体或自体移植物、金属或其他合成板,但这些方法都伴随着相当多的并发症。虽然之前的研究已经探索了颅骨缺损的组织再生,但大多数研究都是在小型动物模型中进行的,转化价值有限。在这里,我们定义了一个猪颅骨 CSD 模型,并展示了一种通过将间充质干细胞(MSCs)与 3D 打印的骨传导 HA/TCP 支架相结合来再生这些缺陷中高质量骨的新方法。具体来说,我们比较了牙髓神经嵴 MSCs(DPNCCs)和骨髓抽吸物(BMA)与 3D 打印的 HA/TCP 支架相结合在颅骨 CSD(>7.0cm)中再生骨的性能。DPNCCs 和 BMA 加载到 3D 打印的骨传导支架上,均支持颅骨骨的再生,其密度、压缩强度和小梁结构与天然骨相似。我们的研究证明了一种原始支架设计与 DPNCCs 或 BMA 相结合的新应用,可支持在新定义的、具有临床相关性的猪颅骨 CSD 模型中再生高质量骨。这一发现可能对颅面区域以外的骨再生产生重要影响,并最终使患有严重 CSD 的患者受益。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1347/8284781/284129687215/SCT3-10-1170-g001.jpg

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