Dehghan-Toranposhti Sina, Bakhshi Rasoul, Alizadeh Reza, Bohlouli Mahboubeh
Department of Materials Science and Engineering, Sharif University of Technology, Azadi Ave., Tehran, 11155-9466, Iran.
Department of Materials Science and Engineering, North Carolina State University, Raleigh, NC, USA.
Sci Rep. 2024 Jul 18;14(1):16592. doi: 10.1038/s41598-024-67478-9.
Polylactic acid (PLA) based scaffolds have attained considerable attention in recent years for being used as biodegradable implants in bone tissue engineering (BTE), owing to their suitable biocompatibility and processability. Nevertheless, the mechanical properties, bioactivity and biodegradation rate of PLA need to be improved for practical application. In this investigation, PLA-xMn composite filaments (x = 0, 1, 3, 5 and 7 wt%) were fabricated, characterized, and used for 3D printing of scaffolds by the fused deposition modeling process. The effect of Mn addition on the thermal, physical, mechanical, and structural properties, as well as the degradability and cell viability of 3D printed scaffolds were investigated in details. The obtained results indicate that the PLA-Mn composite filaments exhibit higher chain mobility and melt flow index values, with lower cold crystallization temperature and a higher degree of crystallinity. This higher flowability led to lower dimensional accuracy of 3D printed scaffolds, but resulted in higher interlayer adhesion. It was found that the mechanical properties of composite scaffolds were remarkably enhanced with the addition of Mn particles. The incorporation of Mn particles also caused higher surface roughness and hydrophilicity, a superior biodegradation rate of the scaffolds as well as better biocompatibility, indicating a promising candidate for (BTE) applications.
近年来,基于聚乳酸(PLA)的支架因其合适的生物相容性和可加工性,在骨组织工程(BTE)中用作可生物降解植入物而备受关注。然而,PLA的机械性能、生物活性和生物降解速率需要进一步改进以满足实际应用需求。在本研究中,制备了PLA-xMn复合长丝(x = 0、1、3、5和7 wt%),对其进行了表征,并通过熔融沉积建模工艺用于支架的3D打印。详细研究了添加Mn对3D打印支架的热性能、物理性能、机械性能和结构性能,以及降解性和细胞活力的影响。结果表明,PLA-Mn复合长丝具有更高的链迁移率和熔体流动指数值,更低的冷结晶温度和更高的结晶度。这种更高的流动性导致3D打印支架的尺寸精度降低,但层间附着力更高。研究发现,添加Mn颗粒后复合支架的机械性能显著增强。Mn颗粒的加入还导致支架表面粗糙度和亲水性增加,支架具有更高的生物降解速率以及更好的生物相容性,表明其在骨组织工程应用中具有广阔前景。