Al-Hadeethi Yas, Nagarajan Aishwarya, Hanuman Srividya, Mohammed Hiba, Vetekar Aakanksha M, Thakur Goutam, Dinh Le N M, Yao Yin, Mkawi E M, Hussein Mahmoud Ali, Agarwal Vipul, Nune Manasa
Department of Physics, Faculty of Science, King Abdulaziz University Jeddah 21589 Saudi Arabia.
Lithography in Devices Fabrication and Development Research Group, Deanship of Scientific Research, King Abdulaziz University Jeddah 21589 Saudi Arabia.
RSC Adv. 2023 Jan 5;13(2):1392-1401. doi: 10.1039/d2ra05368c. eCollection 2023 Jan 3.
Nerve tissue engineering aims to create scaffolds that promote nerve regeneration in the damaged peripheral nervous system. However, there remain some challenges in the construction of scaffolds in terms of mechanical properties and cellular behaviour. The present work aims to develop multifunctional implantable nanofibrous scaffolds for nerve regeneration. Using electrospinning, nanofibrous neat polycaprolactone (PCL) and PCL/multiwalled carbon nanotubes (PCL-MWCNT) composite scaffolds were prepared in random and aligned morphology. Schwann cells and their secreted biochemical factors are responsible for neuronal survival in the peripheral nervous system. Therefore, the acellular matrix of Schwann cells was spin-coated on the PCL-MWCNT scaffolds to aid nerve regeneration. Physicochemical and mechanical properties, and the cellular response of the developed nanofibrous were investigated. We observed no significant change in fibre diameter between neat PCL and PCL-MWCNT scaffolds regardless of the morphology. However, the inclusion of MWCNT reduced the mechanical strength of nanocomposite scaffolds compared to neat PCL. study revealed biocompatibility of the developed scaffolds both with and without an acellular matrix. Gene expression study revealed a significant increase in peripheral myelin protein (PMP22) expression on acellular matrix-coated PCL-MWCNT scaffolds compared to neat PCL counterparts. Overall, the results suggested Schwann cell matrix-coated PCL-MWCNT nanofibers as a promising conduit for peripheral nerve regeneration.
神经组织工程旨在创建能够促进受损周围神经系统神经再生的支架。然而,在支架构建方面,在机械性能和细胞行为方面仍存在一些挑战。目前的工作旨在开发用于神经再生的多功能可植入纳米纤维支架。利用静电纺丝技术,制备了具有随机和排列形态的纳米纤维纯聚己内酯(PCL)和PCL/多壁碳纳米管(PCL-MWCNT)复合支架。雪旺细胞及其分泌的生化因子负责周围神经系统中神经元的存活。因此,将雪旺细胞的无细胞基质旋涂在PCL-MWCNT支架上以促进神经再生。研究了所开发纳米纤维的物理化学和机械性能以及细胞反应。我们观察到,无论形态如何,纯PCL和PCL-MWCNT支架之间的纤维直径均无显著变化。然而,与纯PCL相比,MWCNT的加入降低了纳米复合支架的机械强度。研究表明,所开发的支架无论有无无细胞基质都具有生物相容性。基因表达研究表明,与纯PCL对应物相比,无细胞基质涂层的PCL-MWCNT支架上的外周髓磷脂蛋白(PMP22)表达显著增加。总体而言,结果表明雪旺细胞基质涂层的PCL-MWCNT纳米纤维是周围神经再生的一种有前景的导管。