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生物形态、层次结构的磷灰石支架引导下承重节段性骨缺损的骨再生

Bone Regeneration in Load-Bearing Segmental Defects, Guided by Biomorphic, Hierarchically Structured Apatitic Scaffold.

作者信息

Kon Elizaveta, Salamanna Francesca, Filardo Giuseppe, Di Matteo Berardo, Shabshin Nogah, Shani Jonathan, Fini Milena, Perdisa Francesco, Parrilli Annapaola, Sprio Simone, Ruffini Andrea, Marcacci Maurilio, Tampieri Anna

机构信息

Department of Biomedical Sciences, Humanitas University, Milan, Italy.

IRCCS Humanitas Research Hospital, Rozzano, Italy.

出版信息

Front Bioeng Biotechnol. 2021 Sep 27;9:734486. doi: 10.3389/fbioe.2021.734486. eCollection 2021.

Abstract

The regeneration of load-bearing segmental bone defects remains a significant clinical problem in orthopedics, mainly due to the lack of scaffolds with composition and 3D porous structure effective in guiding and sustaining new bone formation and vascularization in large bone defects. In the present study, biomorphic calcium phosphate bone scaffolds (GreenBone™) featuring osteon-mimicking, hierarchically organized, 3D porous structure and lamellar nano-architecture were implanted in a critical cortical defect in sheep and compared with allograft. Two different types of scaffolds were tested: one made of ion-doped hydroxyapatite/β-tricalcium-phosphate (GB-1) and other made of undoped hydroxyapatite only (GB-2). X-ray diffraction patterns of GB-1 and GB-2 confirmed that both scaffolds were made of hydroxyapatite, with a minor amount of β-TCP in GB-1. The chemical composition analysis, obtained by ICP-OES spectrometer, highlighted the carbonation extent and the presence of small amounts of Mg and Sr as doping ions in GB-1. SEM micrographs showed the channel-like wide open porosity of the biomorphic scaffolds and the typical architecture of internal channel walls, characterized by a cell structure mimicking the natural parenchyma of the rattan wood used as a template for the scaffold fabrication. Both GB-1 and GB-2 scaffolds show very similar porosity extent and 3D organization, as also revealed by mercury intrusion porosimetry. Comparing the two scaffolds, GB-1 showed slightly higher fracture strength, as well as improved stability at the stress plateau. In comparison to allograft, at the follow-up time of 6 months, both GB-1 and GB-2 scaffolds showed higher new bone formation and quality of regenerated bone (trabecular thickness, number, and separation). In addition, higher osteoid surface (OS/BS), osteoid thickness (OS.Th), osteoblast surface (Ob.S/BS), vessels/microvessels numbers, as well as substantial osteoclast-mediated implant resorption were observed. The highest values in OS.Th and Ob. S/BS parameters were found in GB-1 scaffold. Finally, Bone Mineralization Index of new bone within scaffolds, as determined by micro-indentation, showed a significantly higher microhardness for GB-1 scaffold in comparison to GB-2. These findings suggested that the biomorphic calcium phosphate scaffolds were able to promote regeneration of load-bearing segmental bone defects in a clinically relevant scenario, which still represents one of the greatest challenges in orthopedics nowadays.

摘要

承重节段性骨缺损的再生仍然是骨科领域一个重大的临床问题,主要原因是缺乏具有有效引导和维持大骨缺损处新骨形成及血管化的成分和三维多孔结构的支架。在本研究中,将具有模仿骨单位、层次有序的三维多孔结构和层状纳米结构的生物形态磷酸钙骨支架(GreenBone™)植入绵羊的关键皮质缺损处,并与同种异体骨进行比较。测试了两种不同类型的支架:一种由离子掺杂的羟基磷灰石/β-磷酸三钙制成(GB-1),另一种仅由未掺杂的羟基磷灰石制成(GB-2)。GB-1和GB-2的X射线衍射图谱证实两种支架均由羟基磷灰石制成,GB-1中含有少量β-TCP。通过电感耦合等离子体发射光谱仪进行的化学成分分析突出了GB-1中的碳酸化程度以及少量作为掺杂离子的Mg和Sr的存在。扫描电子显微镜图像显示了生物形态支架的通道状大孔隙以及内部通道壁的典型结构,其特征是具有模仿用作支架制造模板的藤木天然薄壁组织的细胞结构。压汞法也显示GB-1和GB-2支架的孔隙率程度和三维结构非常相似。比较两种支架,GB-1显示出略高的断裂强度以及在应力平台处更好的稳定性。与同种异体骨相比,在6个月的随访期时,GB-1和GB-2支架均显示出更高的新骨形成和再生骨质量(小梁厚度、数量和间距)。此外,观察到更高的类骨质表面(OS/BS)、类骨质厚度(OS.Th)、成骨细胞表面(Ob.S/BS)、血管/微血管数量,以及大量破骨细胞介导的植入物吸收。在GB-1支架中发现OS.Th和Ob.S/BS参数的最高值。最后,通过微压痕测定的支架内新骨的骨矿化指数显示,与GB-2相比,GB-1支架的显微硬度明显更高。这些发现表明,在临床相关情况下,生物形态磷酸钙支架能够促进承重节段性骨缺损的再生,而这仍然是当今骨科领域最大的挑战之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5892/8503888/7218d48448db/fbioe-09-734486-g001.jpg

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