Regenerative rehabilitation with conductive biomaterials for spinal cord injury

被引:68
作者
Kiyotake, Emi A. [1 ]
Martin, Michael D. [2 ]
Detamore, Michael S. [1 ]
机构
[1] Univ Oklahoma, Stephenson Sch Biomed Engn, Norman, OK 73019 USA
[2] Univ Oklahoma, Hlth Sci Ctr, Dept Neurosurg, Oklahoma City, OK USA
关键词
Conductive biomaterials; Regenerative rehabilitation; Spinal cord injury; Electrical stimulation; Injectable; MESENCHYMAL STEM-CELLS; GRAPHENE OXIDE SCAFFOLDS; CARBON NANOTUBES; GOLD NANOPARTICLE; ELECTRICAL-STIMULATION; NEURAL DIFFERENTIATION; INJECTABLE HYDROGEL; NERVE REGENERATION; LOCAL-DELIVERY; TISSUE;
D O I
10.1016/j.actbio.2020.12.021
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A B S T R A C T The individual approaches of regenerative medicine effort s alone and rehabilitation efforts alone have not yet fully restored function after severe spinal cord injury (SCI). Regenerative rehabilitation may be leveraged to promote regeneration of the spinal cord tissue, and promote reorganization of the regenerated neural pathways and intact spinal circuits for better functional recovery for SCI. Conductive biomaterials may be a linchpin that empowers the synergy between regenerative medicine and rehabilitation approaches, as electrical stimulation applied to the spinal cord could facilitate neural reorganization. In this review, we discuss current regenerative medicine approaches in clinical trials and the rehabilitation, or neuromodulation, approaches for SCI, along with their respective translational limitations. Furthermore, we review the translational potential, in a surgical context, of conductive biomaterials (e.g., conductive polymers, carbon-based materials, metallic nanoparticle-based materials) as they pertain to SCI. While pre-formed scaffolds may be difficult to translate to human contusion SCIs, injectable composites that contain blended conductive components and can form within the injury may be more translational. However, given that there are currently no in vivo SCI studies that evaluated conductive materials combined with rehabilitation approaches, we discuss several limitations of conductive biomaterials, including demonstrating safety and efficacy, that will need to be addressed in the future for conductive biomaterials to become SCI therapeutics. Even so, the use of conductive biomaterials creates a synergistic opportunity to merge the fields of regenerative medicine and rehabilitation and redefine what regenerative rehabilitation means for the spinal cord. Statement of significance For spinal cord injury (SCI), the individual approaches of regenerative medicine and rehabilitation are insufficient to fully restore functional recovery; however, the goal of regenerative rehabilitation is to combine these two disparate fields to maximize the functional outcomes. Concepts similar to regenerative rehabilitation for SCI have been discussed in several reviews, but for the first time, this review considers how conductive biomaterials may synergize the two approaches. We cover current regenerative medicine and rehabilitation approaches for SCI, and the translational advantages and disadvantages, in a surgical context, of conductive biomaterials used in biomedical applications that may be additionally applied to SCI. Furthermore, we identify the current limitations and translational challenges for conductive biomaterials before they may become therapeutics for SCI. (c) 2020 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:43 / 64
页数:22
相关论文
共 235 条
[41]   Effectiveness of anodal transcranial direct current stimulation to improve muscle strength and motor functionality after incomplete spinal cord injury: a systematic review and meta-analysis [J].
De Araujo, Amanda Vitoria Lacerda ;
Ribeiro, Felipe Piccarone Goncalves ;
Massetti, Thais ;
Potter-Baker, Kelsey A. ;
Cortes, Mar ;
Plow, Ela Bhatt ;
Da Silva, Talita Dias ;
Tonks, James ;
Anghinah, Renato ;
Magalhaes, Fernando Henrique ;
Fregni, Felipe ;
De Mello Monteiro, Carlos Bandeira .
SPINAL CORD, 2020, 58 (06) :635-646
[42]   Hypothermic Treatment for Acute Spinal Cord Injury [J].
Dietrich, W. Dalton ;
Levi, Allan D. ;
Wang, Michael ;
Green, Barth A. .
NEUROTHERAPEUTICS, 2011, 8 (02) :229-239
[43]  
Distler T., 2019, ACTA BIOMATER
[44]   Myelinated axons and functional blood vessels populate mechanically compliant rGO foams in chronic cervical hemisected rats [J].
Dominguez-Bajo, Ana ;
Gonzalez-Mayorga, Ankor ;
Guerrero, Carlos R. ;
Javier Palomares, F. ;
Garcia, Ricardo ;
Lopez-Dolado, Elisa ;
Concepcion Serrano, Maria .
BIOMATERIALS, 2019, 192 :461-474
[45]   Graphene-Derived Materials Interfacing the Spinal Cord: Outstanding in Vitro and in Vivo Findings [J].
Dominguez-Bajo, Ana ;
Gonzalez-Mayorga, Ankor ;
Lopez-Dolado, Elisa ;
Serrano, Maria C. .
FRONTIERS IN SYSTEMS NEUROSCIENCE, 2017, 11
[46]   Development of 3D printable conductive hydrogel with crystallized PEDOT:PSS for neural tissue engineering [J].
Dong Nyoung Heo ;
Lee, Se-Jun ;
Timsina, Raju ;
Qiu, Xiangyun ;
Castro, Nathan J. ;
Zhang, Lijie Grace .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 99 :582-590
[47]  
Heo DN, 2018, TISSUE ENG PT A, V24, P537, DOI [10.1089/ten.tea.2017.0150, 10.1089/ten.TEA.2017.0150]
[48]   Tissue Engineering Approaches to Modulate the Inflammatory Milieu following Spinal Cord Injury [J].
Dumont, Courtney M. ;
Margul, Daniel J. ;
Shea, Lonnie D. .
CELLS TISSUES ORGANS, 2015, 202 (1-2) :52-66
[49]  
Dvir T, 2011, NAT NANOTECHNOL, V6, P720, DOI [10.1038/NNANO.2011.160, 10.1038/nnano.2011.160]
[50]   Training locomotor networks [J].
Edgerton, V. Reggie ;
Courtine, Gregoire ;
Gerasimenko, Yury P. ;
Lavrov, Igor ;
Ichiyama, Ronaldo M. ;
Fong, Andy J. ;
Cai, Lance L. ;
Otoshi, Chad K. ;
Tillakaratne, Niranjala J. K. ;
Burdick, Joel W. ;
Roy, Roland R. .
BRAIN RESEARCH REVIEWS, 2008, 57 (01) :241-254