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增强型多壁碳纳米管和氮化硼纳米片基混合压电 PLLA 支架的协同效应,用于高效的骨组织再生。

Synergistic Effect of Reinforced Multiwalled Carbon Nanotubes and Boron Nitride Nanosheet-Based Hybrid Piezoelectric PLLA Scaffold for Efficient Bone Tissue Regeneration.

机构信息

School of Mechatronics Engineering, Korea University of Technology and Education, Cheonan, Chungnam 31253, Republic of Korea.

Department of Bionanosystem Engineering, Graduate School, Jeonbuk National University, Jeonju 54896, Republic of Korea.

出版信息

ACS Biomater Sci Eng. 2022 Aug 8;8(8):3542-3556. doi: 10.1021/acsbiomaterials.2c00459. Epub 2022 Jul 19.

Abstract

Electrospun poly(l-lactic acid) nanofibers (PLLANFs) have been receiving considerable attention in bone tissue engineering (BTE) due to their tunable biodegradability and remarkable in vitro and in vivo biocompatibility. However, deterioration in the mechanical strength of PLLANFs during the regeneration process leads to low osteoinductive performances. Additionally, their high hydrophobicity and limited piezoelectric properties have to be addressed concerning BTE. Herein, we report an efficient approach for fabricating high-performance PLLANF hybrid scaffolds for BTE by reinforcing amphiphilic triblock copolymer pluronic F-127 (PL)-functionalized nanofillers (PL-functionalized carboxylated multiwalled carbon nanotubes (PL-cMWCNTs) and PL-functionalized exfoliated boron nitride nanosheets (PL-EBN)). The synergistic reinforcement effect from one-dimensional (1D) electrically conducting PL-cMWCNTs and two-dimensional (2D) piezoelectric PL-EBN was remarkable in PLLANFs, and the obtained PL-Hybrid (PL-cMWCNTs + PL-EBN) reinforced scaffolds have outperformed the mechanical strength, wettability, and piezoelectric performances of pristine PLLANFs. Consequently, in vitro biocompatibility results reveal the enhanced proliferation of MC3T3-E1 cells on PL-Hybrid nanofiber scaffolds. Furthermore, the ALP activity, ARS staining, and comparable osteogenic gene expression results demonstrated significant osteogenic differentiation of MC3T3-E1 cells on PL-Hybrid nanofiber scaffolds than on the pristine PLLANF scaffold. Thus, the reported approach for constructing high-performance piezoelectric biodegradable scaffolds for BTE by the synergistic effect of PL-cMWCNTs and PL-EBN holds great promise in tissue engineering applications.

摘要

静电纺丝聚(L-丙交酯)纳米纤维(PLLANFs)由于其可调的生物降解性和显著的体外和体内生物相容性,在骨组织工程(BTE)中受到了相当大的关注。然而,在再生过程中 PLLANFs 的机械强度下降导致其成骨性能较低。此外,就 BTE 而言,还需要解决其高疏水性和有限的压电性能。在此,我们报告了一种通过增强两亲性嵌段共聚物普朗尼克 F-127(PL)功能化纳米填料(PL 功能化羧基多壁碳纳米管(PL-cMWCNTs)和 PL 功能化剥离氮化硼纳米片(PL-EBN))来制备用于 BTE 的高性能 PLLANF 杂化支架的有效方法。一维(1D)导电 PL-cMWCNTs 和二维(2D)压电 PL-EBN 的协同增强效应在 PLLANFs 中非常显著,所得的 PL-杂化(PL-cMWCNTs+PL-EBN)增强支架的机械强度、润湿性和压电性能均优于原始 PLLANFs。因此,体外生物相容性结果表明,MC3T3-E1 细胞在 PL-Hybrid 纳米纤维支架上的增殖能力得到了增强。此外,ALP 活性、ARS 染色和可比的成骨基因表达结果表明,与原始 PLLANF 支架相比,MC3T3-E1 细胞在 PL-Hybrid 纳米纤维支架上具有显著的成骨分化。因此,通过 PL-cMWCNTs 和 PL-EBN 的协同效应构建用于 BTE 的高性能压电可生物降解支架的报告方法在组织工程应用中具有很大的应用前景。

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