[1] |
Shu Wang, Miao Gu, Cheng-Cheng Luan, Yu Wang, Xiaosong Gu, Jiang-Hong He.
Biocompatibility and biosafety of butterfly wings for the clinical use of tissue-engineered nerve grafts
[J]. Neural Regeneration Research, 2021, 16(8): 1606-1612.
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[2] |
Magdalini Tsintou, Kyriakos Dalamagkas, Tara L. Moore, Yogesh Rathi, Marek Kubicki, Douglas L. Rosene, Nikos Makris.
The use of hydrogel-delivered extracellular vesicles in recovery of motor function in stroke: a testable experimental hypothesis for clinical translation including behavioral and neuroimaging assessment approaches
[J]. Neural Regeneration Research, 2021, 16(4): 605-613.
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[3] |
Rocío Fernández-Serra, Rebeca Gallego, Paloma Lozano, Daniel González-Nieto.
Hydrogels for neuroprotection and functional
rewiring: a new era for brain engineering
[J]. Neural Regeneration Research, 2020, 15(5): 783-789.
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[4] |
Magdalini Tsintou, Kyriakos Dalamagkas, Nikos Makris.
Taking central nervous system regenerative therapies
to the clinic: curing rodents versus nonhuman
primates versus humans
[J]. Neural Regeneration Research, 2020, 15(3): 425-437.
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[5] |
Ping Liu,Jiang Peng,Gong-Hai Han,Xiao Ding,Shuai Wei,Gang Gao,Kun Huang,Feng Chang,Yu Wang .
Role of macrophages in peripheral nerve injury and repair
[J]. Neural Regeneration Research, 2019, 14(8): 1335-1342.
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[6] |
Shuo Liu, Yuan-Yuan Xie, Bin Wang.
Role and prospects of regenerative biomaterials in the repair of spinal cord injury
[J]. Neural Regeneration Research, 2019, 14(8): 1352-1363.
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[7] |
Alessandro Crosio,Benedetta Elena Fornasari, Giovanna Gambarotta,Stefano Geuna,Stefania Raimondo,Bruno Battiston,Pierluigi Tos,Giulia Ronchi.
Chitosan tubes enriched with fresh skeletal muscle fibers for delayed repair of peripheral nerve defects
[J]. Neural Regeneration Research, 2019, 14(6): 1079-1084.
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[8] |
Jian-Tao Yang,Jin-Tao Fang,Liang Li, Gang Chen, Ben-Gang Qin, Li-Qiang Gu.
Contralateral C7 transfer combined with acellular nerve allografts seeded with differentiated adipose stem cells for repairing upper brachial plexus injury in rats
[J]. Neural Regeneration Research, 2019, 14(11): 1932-1940.
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[9] |
Feng Yan, Ming Li, Hong-Qi Zhang, Gui-Lin Li, Yang Hua, Ying Shen, Xun-Ming Ji, Chuan-Jie Wu, Hong An, Ming Ren.
Collagen-chitosan scaffold impregnated with bone marrow mesenchymal stem cells for treatment of traumatic brain injury
[J]. Neural Regeneration Research, 2019, 14(10): 1780-1786.
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[10] |
Pei-Xun Zhang, Na Han, Yu-Hui Kou, Qing-Tang Zhu, Xiao-Lin Liu, Da-Ping Quan, Jian-Guo Chen, Bao-Guo Jiang.
Tissue engineering for the repair of peripheral nerve injury
[J]. Neural Regeneration Research, 2019, 14(1): 51-58.
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[11] |
Wei-Bo Kang, Yong-Jie Chen, Du-Yi Lu, Jia-Zhi Yan.
Folic acid contributes to peripheral nerve injury repair by promoting Schwann cell proliferation, migration, and secretion of nerve growth factor
[J]. Neural Regeneration Research, 2019, 14(1): 132-139.
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[12] |
John C. O’Donnell, Kritika S. Katiyar, Kate V. Panzer, D. Kacy Cullen.
A tissue-engineered rostral migratory stream for directed neuronal replacement
[J]. Neural Regeneration Research, 2018, 13(8): 1327-1331.
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[13] |
Xue Chen, Mei-Ling Xu, Cheng-Niu Wang, Lu-Zhong Zhang, Ya-Hong Zhao, Chang-Lai Zhu, Ying Chen, Jian Wu, Yu-Min Yang, Xiao-Dong Wang.
A partition-type tubular scaffold loaded with PDGFreleasing microspheres for spinal cord repair facilitates the directional migration and growth of cells
[J]. Neural Regeneration Research, 2018, 13(7): 1231-1240.
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[14] |
Aaron M. Adams, Keith W. VanDusen, Tatiana Y. Kostrominova, Jacob P. Mertens, Lisa M. Larkin.
Scaffoldless tissue-engineered nerve conduit promotes peripheral nerve regeneration and functional recovery after tibial nerve injury in rats
[J]. Neural Regeneration Research, 2017, 12(9): 1529-1537.
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[15] |
Xian-bin Kong, Qiu-yan Tang, Xu-yi Chen, Yue Tu, Shi-zhong Sun, Zhong-lei Sun.
Polyethylene glycol as a promising synthetic material for repair of spinal cord injury
[J]. Neural Regeneration Research, 2017, 12(6): 1003-1008.
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