Literature DB >> 32875631

Reduced Graphene Oxide-Encapsulated Microfiber Patterns Enable Controllable Formation of Neuronal-Like Networks.

Juan Wang1,2, Haoyu Wang1,3, Xiumei Mo2, Hongjun Wang1,3.   

Abstract

Scaffold-guided formation of neuronal-like networks, especially under electrical stimulation, can be an appealing avenue toward functional restoration of injured nervous systems. Here, 3D conductive scaffolds are fabricated based on printed microfiber constructs using near-field electrostatic printing (NFEP) and graphene oxide (GO) coating. Various microfiber patterns are obtained from poly(l-lactic acid-co-caprolactone) (PLCL) using NFEP and complexity is achieved via modulating the fiber overlay angles (45°, 60°, 75°, 90°), fiber diameters (15 to 148 µm), and fiber spatial organization (spider web and tubular structure). Upon coating GO onto PLCL microfibers via a layer-by-layer (L-b-L) assembly technique and in situ reduction into reduced GO (rGO), the obtained conductive scaffolds, with 25-50 layers of rGO, demonstrate superior conductivity (≈0.95 S cm-1 ) and capability of inducing neuronal-like network formation along the conductive microfibers under electrical stimulation (100-150 mV cm-1 ). Both electric field (0-150 mV cm-1 ) and microfiber diameter (17-150 µm) affect neurite outgrowth (PC-12 cells and primary mouse hippocampal neurons) and the formation of orientated neuronal-like networks. With further demonstration of such guidance to neuronal cells, these conductive scaffolds may see versatile applications in nerve regeneration and neural engineering.
© 2020 Wiley-VCH GmbH.

Entities:  

Keywords:  conductive micropatterns; electrical stimulation; graphene oxide; microfibers; neuronal-like networks

Mesh:

Substances:

Year:  2020        PMID: 32875631     DOI: 10.1002/adma.202004555

Source DB:  PubMed          Journal:  Adv Mater        ISSN: 0935-9648            Impact factor:   30.849


  7 in total

1.  Electrical charge on ferroelectric nanocomposite membranes enhances SHED neural differentiation.

Authors:  Xiaochan Li; Boon Chin Heng; Yunyang Bai; Qianqian Wang; Min Gao; Ying He; Xinwen Zhang; Xuliang Deng; Xuehui Zhang
Journal:  Bioact Mater       Date:  2022-05-21

Review 2.  Graphene-Based Scaffolds for Regenerative Medicine.

Authors:  Pietro Bellet; Matteo Gasparotto; Samuel Pressi; Anna Fortunato; Giorgia Scapin; Miriam Mba; Enzo Menna; Francesco Filippini
Journal:  Nanomaterials (Basel)       Date:  2021-02-05       Impact factor: 5.076

Review 3.  An Update on Graphene-Based Nanomaterials for Neural Growth and Central Nervous System Regeneration.

Authors:  Maria Grazia Tupone; Gloria Panella; Michele d'Angelo; Vanessa Castelli; Giulia Caioni; Mariano Catanesi; Elisabetta Benedetti; Annamaria Cimini
Journal:  Int J Mol Sci       Date:  2021-12-02       Impact factor: 5.923

Review 4.  Implantable nerve guidance conduits: Material combinations, multi-functional strategies and advanced engineering innovations.

Authors:  Yixin Yan; Ruotong Yao; Jingyuan Zhao; Kaili Chen; Lirong Duan; Tian Wang; Shujun Zhang; Jinping Guan; Zhaozhu Zheng; Xiaoqin Wang; Zekun Liu; Yi Li; Gang Li
Journal:  Bioact Mater       Date:  2021-10-05

5.  Preclinical assessment on neuronal regeneration in the injury-related microenvironment of graphene-based scaffolds.

Authors:  Yun Qian; Xu Wang; Jialin Song; Wei Chen; Shuai Chen; Yi Jin; Yuanming Ouyang; Wei-En Yuan; Cunyi Fan
Journal:  NPJ Regen Med       Date:  2021-06-02

6.  Controllable preparation and performance of bio-based poly(lactic acid-iminodiacetic acid) as sustained-release Pb2+ chelating agent.

Authors:  Jian-Yun Lin; Xi-Ying Cao; Ying Xiao; Jin-Xin Wang; Shi-He Luo; Li-Ting Yang; Yong-Gan Fang; Zhao-Yang Wang
Journal:  iScience       Date:  2021-05-08

Review 7.  Application of Hybrid Electrically Conductive Hydrogels Promotes Peripheral Nerve Regeneration.

Authors:  Fengshi Zhang; Meng Zhang; Songyang Liu; Ci Li; Zhentao Ding; Teng Wan; Peixun Zhang
Journal:  Gels       Date:  2022-01-06
  7 in total

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