Chemistry and Physics of Materials Unit School of Advanced Materials, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur, Bengaluru 560064, Karnataka, India.
Bioorganic Chemistry Laboratory, New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur, Bengaluru 560064, Karnataka, India.
Mater Sci Eng C Mater Biol Appl. 2019 Jan 1;94:17-25. doi: 10.1016/j.msec.2018.09.014. Epub 2018 Sep 6.
Nerve restoration and repair in the central nervous system is complicated and requires several factors to be considered while designing the scaffolds like being bioactive as well as having neuroinductive, neuroconductive and antioxidant properties. Aligned electrospun nanofibers provide necessary guidance and topographical cues required for directing the axonal and neurite outgrowth during regeneration. Conduction of nerve impulses is a mandatory feature of a typical nerve. The neuro-conductive property can be imparted by blending the biodegradable, bioactive polymers with conductive polymers. This will provide additional features, i.e., electrical cues to the already existing topographical and bioactive cues in order to make it a more multifaceted neuroregenerative approach. Hence in the present study, we used a combination of silk fibroin and melanin for the fabrication of random and aligned electrospun nanofibrous composite scaffolds. We performed the physico-chemical characterization and also assessed their antioxidant properties. We also evaluated their neurogenic potential using human neuroblastoma cells (SH-SY5Y) for their cellular viability, proliferation, adhesion and differentiation levels. Designed nanofibrous scaffolds had adequate physical properties suitable as neural substrates to promote neuronal growth and regeneration. They stimulated the neuroblastoma cell attachment and viability indicating their biocompatible nature. Silk/melanin composite scaffolds have specifically exhibited high antioxidant nature proven by the radical scavenging activity. Additionally, the melanin incorporated aligned silk fibroin scaffolds promoted the cell differentiation into neurons and orientation along their axis. Our results confirmed the potential of melanin incorporated aligned silk fibroin scaffolds as the promising candidates for effective nerve regeneration and recovery.
中枢神经系统的神经修复和再生较为复杂,在设计支架时需要考虑几个因素,例如具有生物活性以及神经营养、神经传导和抗氧化特性。取向的静电纺纳米纤维为轴突和突起的再生提供了必要的导向和拓扑线索。神经冲动的传导是典型神经的必备特征。可通过将可生物降解的生物活性聚合物与导电聚合物混合来赋予神经传导特性。这将提供额外的特性,即电线索,以补充现有的拓扑和生物活性线索,从而使其成为更全面的神经再生方法。因此,在本研究中,我们使用丝素蛋白和黑色素的组合来制备随机和取向的静电纺纳米纤维复合支架。我们进行了物理化学特性分析,并评估了它们的抗氧化性能。我们还使用人神经母细胞瘤细胞 (SH-SY5Y) 评估了它们的神经发生潜力,以评估其细胞活力、增殖、黏附和分化水平。设计的纳米纤维支架具有足够的物理性能,适合作为促进神经元生长和再生的神经基质。它们刺激神经母细胞瘤细胞的附着和活力,表明其具有生物相容性。丝素/黑色素复合支架具有高抗氧化特性,这一点已通过自由基清除活性得到证实。此外,黑色素掺入的取向丝素纤维支架促进了细胞向神经元分化,并沿着它们的轴定向。我们的结果证实了黑色素掺入的取向丝素纤维支架作为有效神经再生和恢复的有前途候选物的潜力。