School of Medicine, Institute of Brain and Cognitive Science, Key Laboratory of Novel Targets and Drug Study for Neural Repair of Zhejiang Province, School of Medicine, Hangzhou City University, Hangzhou, 310015, Zhejiang, China.
J Nanobiotechnology. 2023 Jun 7;21(1):181. doi: 10.1186/s12951-023-01920-4.
Two-dimensional (2D) nanomaterials, such as graphene, black phosphorus and transition metal dichalcogenides, have attracted increasing attention in biology and biomedicine. Their high mechanical stiffness, excellent electrical conductivity, optical transparency, and biocompatibility have led to rapid advances. Neuroscience is a complex field with many challenges, such as nervous system is difficult to repair and regenerate, as well as the early diagnosis and treatment of neurological diseases are also challenged. This review mainly focuses on the application of 2D nanomaterials in neuroscience. Firstly, we introduced various types of 2D nanomaterials. Secondly, due to the repairment and regeneration of nerve is an important problem in the field of neuroscience, we summarized the studies of 2D nanomaterials applied in neural repairment and regeneration based on their unique physicochemical properties and excellent biocompatibility. We also discussed the potential of 2D nanomaterial-based synaptic devices to mimic connections among neurons in the human brain due to their low-power switching capabilities and high mobility of charge carriers. In addition, we also reviewed the potential clinical application of various 2D nanomaterials in diagnosing and treating neurodegenerative diseases, neurological system disorders, as well as glioma. Finally, we discussed the challenge and future directions of 2D nanomaterials in neuroscience.
二维(2D)纳米材料,如石墨烯、黑磷和过渡金属二硫属化物,在生物学和生物医学领域引起了越来越多的关注。它们具有高机械刚度、优异的导电性、光学透明性和生物相容性,这导致了它们的快速发展。神经科学是一个复杂的领域,面临着许多挑战,例如神经系统难以修复和再生,以及神经疾病的早期诊断和治疗也面临着挑战。本综述主要关注 2D 纳米材料在神经科学中的应用。首先,我们介绍了各种类型的 2D 纳米材料。其次,由于神经修复和再生是神经科学领域的一个重要问题,我们根据 2D 纳米材料独特的物理化学性质和优异的生物相容性,总结了它们在神经修复和再生方面的研究。我们还讨论了基于 2D 纳米材料的突触器件在模拟人类大脑中神经元之间连接的潜力,因为它们具有低功耗切换能力和载流子的高迁移率。此外,我们还回顾了各种 2D 纳米材料在诊断和治疗神经退行性疾病、神经系统疾病以及神经胶质瘤方面的潜在临床应用。最后,我们讨论了 2D 纳米材料在神经科学中的挑战和未来方向。