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多能间充质细胞在通过商用熔融沉积建模3D设备3D打印的、与20%磷酸三钙混合的聚(ε-己内酯)和掺入10%羟基磷灰石的聚乳酸支架上的归巢与分化

Multipotent Mesenchymal Cells Homing and Differentiation on Poly(ε-caprolactone) Blended with 20% Tricalcium Phosphate and Polylactic Acid Incorporating 10% Hydroxyapatite 3D-Printed Scaffolds via a Commercial Fused Deposition Modeling 3D Device.

作者信息

De Angelis Nicola, Amaroli Andrea, Lagazzo Alberto, Barberis Fabrizio, Zarro Pier Raffaele, Cappelli Alessia, Sabbieti Maria Giovanna, Agas Dimitrios

机构信息

Department of Surgical and Diagnostic Sciences (DISC), Unit of Implant and Prosthodontics, University of Genoa, 16132 Genoa, Italy.

Department of Dentistry, University Trisakti, Jakarta 10110, Indonesia.

出版信息

Biology (Basel). 2023 Nov 28;12(12):1474. doi: 10.3390/biology12121474.

Abstract

As highlighted by the 'Global Burden of Disease Study 2019' conducted by the World Health Organization, ensuring fair access to medical care through affordable and targeted treatments remains crucial for an ethical global healthcare system. Given the escalating demand for advanced and urgently needed solutions in regenerative bone procedures, the critical role of biopolymers emerges as a paramount necessity, offering a groundbreaking avenue to address pressing medical needs and revolutionize the landscape of bone regeneration therapies. Polymers emerge as excellent solutions due to their versatility, making them reliable materials for 3D printing. The development and widespread adoption of this technology would impact production costs and enhance access to related healthcare services. For instance, in dentistry, the use of commercial polymers blended with β-tricalcium phosphate (TCP) is driven by the need to print a standardized product with osteoconductive features. However, modernization is required to bridge the gap between biomaterial innovation and the ability to print them through commercial printing devices. Here we showed, for the first time, the metabolic behavior and the lineage commitment of bone marrow-derived multipotent mesenchymal cells (MSCs) on the 3D-printed substrates poly(e-caprolactone) combined with 20% tricalcium phosphate (PCL + 20% β-TCP) and L-polylactic acid (PLLA) combined with 10% hydroxyapatite (PLLA + 10% HA). Although there are limitations in printing additive-enriched polymers with a predictable and short half-life, the tested 3D-printed biomaterials were highly efficient in supporting osteoinductivity. Indeed, considering different temporal sequences, both 3D-printed biomaterials resulted as optimal scaffolds for MSCs' commitment toward mature bone cells. Of interest, PLLA + 10% HA substrates hold the confirmation as the finest material for osteoinduction of MSCs.

摘要

世界卫生组织开展的“2019年全球疾病负担研究”强调,通过可负担且有针对性的治疗确保公平获得医疗服务,对于符合伦理的全球医疗体系而言仍然至关重要。鉴于再生骨手术中对先进且急需的解决方案的需求不断升级,生物聚合物的关键作用成为当务之急,它提供了一条开创性途径来满足紧迫的医疗需求,并彻底改变骨再生治疗的格局。聚合物因其多功能性而成为出色的解决方案,使其成为3D打印的可靠材料。这项技术的发展和广泛应用将影响生产成本并增加相关医疗服务的可及性。例如,在牙科领域,将商业聚合物与β-磷酸三钙(TCP)混合使用,是出于打印具有骨传导特性的标准化产品的需求。然而,需要进行现代化改进,以弥合生物材料创新与通过商业打印设备打印它们的能力之间的差距。在此,我们首次展示了骨髓来源的多能间充质细胞(MSCs)在3D打印的聚(ε-己内酯)与20%磷酸三钙(PCL + 20%β-TCP)以及左旋聚乳酸(PLLA)与10%羟基磷灰石(PLLA + 10% HA)的底物上的代谢行为和谱系定向。尽管在打印具有可预测且短半衰期的富含添加剂的聚合物方面存在局限性,但测试的3D打印生物材料在支持骨诱导性方面非常高效。事实上,考虑到不同的时间顺序,两种3D打印生物材料都被证明是MSCs向成熟骨细胞定向分化的最佳支架。有趣的是,PLLA + 10% HA底物被确认为诱导MSCs骨化的最佳材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa2f/10740731/2820e63f2f76/biology-12-01474-g001.jpg

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