He Xiaolie, Zhu Yanjing, Ma Bei, Xu Xu, Huang Ruiqi, Cheng Liming, Zhu Rongrong
Key Laboratory of Spine and Spinal Cord Injury Repair and Regeneration of Ministry of Education, Orthopaedic Department of Tongji Hospital, School of Medicine, School of Life Sciences and Technology, Tongji University, Shanghai 200065 PR China.
Key Laboratory of Spine and Spinal Cord Injury Repair and Regeneration of Ministry of Education, Orthopaedic Department of Tongji Hospital, School of Medicine, School of Life Sciences and Technology, Tongji University, Shanghai 200065 PR China.
Adv Drug Deliv Rev. 2022 Aug;187:114379. doi: 10.1016/j.addr.2022.114379. Epub 2022 Jun 3.
Biomaterials have provided promising strategies towards improving the functions of injured tissues of the nervous system. Recently, 2D nanomaterials, such as graphene, layered double hydroxides (LDHs), and black phosphorous, which are characterized by ultrathin film structures, have attracted much attention in the fields of neural repair and regeneration. 2D nanomaterials have extraordinary physicochemical properties and excellent biological activities, such as a large surface-area-to-thickness ratio, high levels of adhesion, and adjustable flexibility. In addition, they can be designed to have superior biocompatibility and electrical or nano-carrier properties. To date, many 2D nanomaterials have been used for synaptic modulation, neuroinflammatory reduction, stem cell fate regulation, and injured neural cell/tissue repair. In this review, we discuss the advances in 2D nanomaterial technology towards novel neurological applications and the mechanisms underlying their unique features. In addition, the future outlook of functional 2D nanomaterials towards addressing the difficult issues of neuropathy has been explored to introduce a promising strategy towards repairing and regenerating the injured nervous system.
生物材料为改善神经系统损伤组织的功能提供了有前景的策略。近来,二维纳米材料,如具有超薄薄膜结构特征的石墨烯、层状双氢氧化物(LDHs)和黑磷,在神经修复和再生领域备受关注。二维纳米材料具有非凡的物理化学性质和出色的生物活性,如高的表面积与厚度比、高粘附性以及可调节的柔韧性。此外,它们可被设计成具有卓越的生物相容性以及电学或纳米载体特性。迄今为止,许多二维纳米材料已被用于突触调节、减轻神经炎症、调控干细胞命运以及修复受损神经细胞/组织。在本综述中,我们讨论二维纳米材料技术在新型神经学应用方面的进展及其独特特性背后的机制。此外,还探讨了功能性二维纳米材料在解决神经病变难题方面的未来前景,以引入一种修复和再生受损神经系统的有前景策略。