Suppr超能文献

具有类螺旋面-三重周期极小曲面多孔结构的羟基磷灰石3D打印支架:制备及在绵羊体内的初步研究

Hydroxyapatite 3D-printed scaffolds with Gyroid-Triply periodic minimal surface porous structure: Fabrication and an in vivo pilot study in sheep.

作者信息

Bouakaz Islam, Drouet Christophe, Grossin David, Cobraiville Elisabeth, Nolens Grégory

机构信息

CERHUM - PIMW, 4000 Liège, Belgium; CIRIMAT, Université de Toulouse, CNRS / Toulouse INP / UT3, 31030 Toulouse, France.

CIRIMAT, Université de Toulouse, CNRS / Toulouse INP / UT3, 31030 Toulouse, France.

出版信息

Acta Biomater. 2023 Oct 15;170:580-595. doi: 10.1016/j.actbio.2023.08.041. Epub 2023 Sep 9.

Abstract

Bone repair is a major challenge in regenerative medicine, e.g. for large defects. There is a need for bioactive, highly percolating bone substitutes favoring bone ingrowth and tissue healing. Here, a modern 3D printing approach (VAT photopolymerization) was exploited to fabricate hydroxyapatite (HA) scaffolds with a Gyroid-"Triply periodic minimal surface" (TPMS) porous structure (65% porosity, 90.5% HA densification) inspired from trabecular bone. Percolation and absorption capacities were analyzed in gaseous and liquid conditions. Mechanical properties relevant to guided bone regeneration in non-load bearing sites, as for maxillofacial contour reconstruction, were evidenced from 3-point bending tests and macrospherical indentation. Scaffolds were implanted in a clinically-relevant large animal model (sheep femur), over 6 months, enabling thorough analyses at short (4 weeks) and long (26 weeks) time points. In vivo performances were systematically compared to the bovine bone-derived Bio-Oss standard. The local tissue response was examined thoroughly by semi-quantitative histopathology. Results demonstrated the absence of toxicity. Bone healing was assessed by bone dynamics analysis through epifluorescence using various fluorochromes and quantitative histomorphometry. Performant bone regeneration was evidenced with similar overall performances to the control, although the Gyroid biomaterial slightly outperformed Bio-Oss at early healing time in terms of osteointegration and appositional mineralization. This work is considered a pilot study on the in vivo evaluation of TPMS-based 3D porous scaffolds in a large animal model, for an extended period of time, and in comparison to a clinical standard. Our results confirm the relevance of such scaffolds for bone regeneration in view of clinical practice. STATEMENT OF SIGNIFICANCE: Bone repair, e.g. for large bone defects or patients with defective vascularization is still a major challenge. Highly percolating TPMS porous structures have recently emerged, but no in vivo data were reported on a large animal model of clinical relevance and comparing to an international standard. Here, we fabricated TPMS scaffolds of HA, determined their chemical, percolation and mechanical features, and ran an in-depth pilot study in the sheep with a systematic comparison to the Bio-Oss reference. Our results clearly show the high bone-forming capability of such scaffolds, with outcomes even better than Bio-Oss at short implantation time. This preclinical work provides quantitative data validating the relevance of such TMPS porous scaffolds for bone regeneration in view of clinical evaluation.

摘要

骨修复是再生医学中的一项重大挑战,例如对于大的骨缺损。需要有促进骨长入和组织愈合的生物活性、高渗透性的骨替代物。在此,采用了一种现代的3D打印方法(光聚合增材制造)来制造具有类骨质“三重周期极小曲面”(TPMS)多孔结构(孔隙率65%,羟基磷灰石(HA)致密化率90.5%)的HA支架,其灵感来源于松质骨。在气态和液态条件下分析了其渗透性和吸收能力。通过三点弯曲试验和大球形压痕证明了与非承重部位引导性骨再生相关的力学性能,如用于颌面轮廓重建。将支架植入临床相关的大型动物模型(绵羊股骨)中,为期6个月,以便在短时间(4周)和长时间(26周)时间点进行全面分析。将体内性能与牛骨来源的Bio-Oss标准进行系统比较。通过半定量组织病理学对局部组织反应进行了全面检查。结果表明无毒性。通过使用各种荧光染料的落射荧光和定量组织形态计量学对骨动力学分析来评估骨愈合情况。尽管类骨质生物材料在早期愈合时在骨整合和贴壁矿化方面略优于Bio-Oss,但仍证明了其具有良好的骨再生性能,其总体性能与对照相似。这项工作被认为是在大型动物模型中对基于TPMS的3D多孔支架进行长时间体内评估并与临床标准进行比较的一项初步研究。我们的结果证实了这种支架在临床实践中对于骨再生的相关性。重要性声明:骨修复,例如对于大的骨缺损或血管化有缺陷的患者,仍然是一项重大挑战。高渗透性的TPMS多孔结构最近已出现,但尚未有关于临床相关大型动物模型并与国际标准进行比较的体内数据报道。在此,我们制造了HA的TPMS支架,确定了其化学、渗透和力学特性,并在绵羊身上进行了深入的初步研究,并与Bio-Oss参考进行了系统比较。我们的结果清楚地表明了这种支架具有很高的成骨能力,在短植入时间时的结果甚至优于Bio-Oss。这项临床前工作提供了定量数据,验证了这种TMPS多孔支架在临床评估中对于骨再生的相关性。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验