[1] |
Alba Guijarro-Belmar, Dominik Mateusz Domanski, Xuenong Bo, Derryck Shewan, Wenlong Huang.
The therapeutic potential of targeting exchange protein directly activated by cyclic adenosine 3′,5′-monophosphate (Epac) for central nervous system trauma
[J]. Neural Regeneration Research, 2021, 16(3): 460-469.
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[2] |
Jin-Hui Xu, Xu-Zhen Qin, Hao-Nan Zhang, Yan-Xia Ma, Shi-Bin Qi, Hong-Cheng Zhang, Jin-Jin Ma, Xin-Ya Fu, Ji-Le Xie, Saijilafu.
Deletion of Krüppel-like factor-4 promotes axonal regeneration in mammals
[J]. Neural Regeneration Research, 2021, 16(1): 166-171.
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[3] |
Ling-Xiao Deng, Nai-Kui Liu, Ryan Ning Wen, Shuang-Ni Yang, Xuejun Wen, Xiao-Ming Xu.
Laminin-coated multifilament entubulation, combined with Schwann cells and glial cell line-derived neurotrophic factor, promotes unidirectional axonal regeneration in a rat model of thoracic spinal cord hemisection
[J]. Neural Regeneration Research, 2021, 16(1): 186-191.
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[4] |
William Rodemer, Jianli Hu, Michael E. Selzer, Michael I. Shifman.
Heterogeneity in the regenerative abilities of central
nervous system axons within species: why do some
neurons regenerate better than others?
[J]. Neural Regeneration Research, 2020, 15(6): 996-1005.
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[5] |
Jia-He Li, Zhong-Ju Shi, Yan Li, Bin Pan, Shi-Yang Yuan, Lin-Lin Shi, Yan Hao, Fu-Jiang Cao, Shi-Qing Feng.
Bioinformatic identification of key candidate genes and
pathways in axon regeneration after spinal cord injury in zebrafish
[J]. Neural Regeneration Research, 2020, 15(1): 103-111.
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[6] |
An Beckers, Lieve Moons.
Dendritic shrinkage after injury: a cellular killer or a necessity for axonal regeneration?
[J]. Neural Regeneration Research, 2019, 14(8): 1313-1316.
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[7] |
David Romeo-Guitart, Caty Casas.
Network-centric medicine for peripheral nerve injury: treating the whole to boost endogenous mechanisms of neuroprotection and regeneration
[J]. Neural Regeneration Research, 2019, 14(7): 1122-1128.
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[8] |
Tao Wang,Li-Ni Zeng,Zhe Zhu,Yu-Hui Wang,Lu Ding,Wei-Bin Luo,Xiao-Min Zhang,Zhi-Wei He,Hong-Fu Wu.
Effect of lentiviral vector-mediated overexpression of hypoxia-inducible factor 1 alpha delivered by pluronic F-127 hydrogel on brachial plexus avulsion in rats
[J]. Neural Regeneration Research, 2019, 14(6): 1069-1078.
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[9] |
Rui Zhang, Joseph M. Rosen.
The role of undifferentiated adipose-derived stem cells in peripheral nerve repair
[J]. Neural Regeneration Research, 2018, 13(5): 757-763.
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[10] |
Jian-Nan Zhang, Jan C. Koch.
Collapsin response mediator protein-2 plays a major protective role in acute axonal degeneration
[J]. Neural Regeneration Research, 2017, 12(5): 692-695.
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[11] |
Carolyn Tallon, Mohamed H. Farah.
Embracing oligodendrocyte diversity in the context of perinatal injury
[J]. Neural Regeneration Research, 2017, 12(10): 1565-1574.
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[12] |
Chizuka Ide, Norihiko Nakano, Kenji Kanekiyo.
Cell transplantation for the treatment of spinal cord injury – bone marrow stromal cells and choroid plexus epithelial cells
[J]. Neural Regeneration Research, 2016, 11(9): 1385-1388.
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[13] |
Wale Sulaiman, Doan H. Nguyen.
Transforming growth factor beta 1, a cytokine with regenerative functions
[J]. Neural Regeneration Research, 2016, 11(10): 1549-1552.
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[14] |
Jennifer Wei Huen Shum,Kai Liu, Kwok-fai So.
The progress in optic nerve regeneration, where are we?
[J]. Neural Regeneration Research, 2016, 11(1): 32-36.
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[15] |
Rosanna C. Ching, Paul J. Kingham.
The role of exosomes in peripheral nerve regeneration
[J]. Neural Regeneration Research, 2015, 10(5): 743-747.
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