4.7 Review

Bioactive 2D nanomaterials for neural repair and regeneration

期刊

ADVANCED DRUG DELIVERY REVIEWS
卷 187, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.addr.2022.114379

关键词

Graphene; Layered double hydroxides; Black phosphorous; Transition metal dichalcogenides; Metal-organic frameworks; Self-assembled 2D nanomaterials; Drug delivery; Inflammation; Tissue repair; Nervous system

资金

  1. National Natural Science Foundation of China [81922039, 81873994, 81820108013, 81901902, 82001309, 31727801]
  2. National Key Research and Development Program [2021YFA1101300]
  3. Basic Research Project of Shanghai Science and Technology Commission [19JC1414700]
  4. Shang-hai Rising-Star Program [22QA1408200]
  5. China Post-doctoral Science Foundation [2021 M692430]
  6. Shanghai Super Postdoctoral Incentive Program

向作者/读者索取更多资源

2D nanomaterials have shown promising potential in the field of neural repair and regeneration. They possess unique physicochemical properties and biological activities, which make them suitable for synaptic modulation, neuroinflammatory reduction, stem cell fate regulation, and injured neural cell/tissue repair. Functional 2D nanomaterials offer a promising strategy for repairing and regenerating the injured nervous system.
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.(c) 2022 Elsevier B.V. All rights reserved.

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