[1] |
Yu Li, Ping-Ping Shen, Bin Wang.
Induced pluripotent stem cell technology for spinal cord injury: a promising alternative therapy
[J]. Neural Regeneration Research, 2021, 16(8): 1500-1509.
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[2] |
Sara Saffari, Tiam M. Saffari, Dietmar J. O. Ulrich, Steven E. R. Hovius, Alexander Y. Shin.
The interaction of stem cells and vascularity in peripheral nerve regeneration
[J]. Neural Regeneration Research, 2021, 16(8): 1510-1517.
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[3] |
Shi-Qin Lv, Wutian Wu.
ISP and PAP4 peptides promote motor functional recovery after peripheral nerve injury
[J]. Neural Regeneration Research, 2021, 16(8): 1598-1605.
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[4] |
Yu-Song Yuan, Fei Yu, Ya-Jun Zhang, Su-Ping Niu, Hai-Lin Xu, Yu-Hui Kou.
Changes in proteins related to early nerve repair in a rat model of sciatic nerve injury
[J]. Neural Regeneration Research, 2021, 16(8): 1622-1627.
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[5] |
Yong-Bin Gao, Zhi-Gang Liu, Guo-Dong Lin, Yang Guo, Lei Chen, Bo-Tao Huang, Yao-Bin Yin, Chen Yang, Li-Ying Sun, Yan-Bo Rong, Shanlin Chen.
Safety and efficacy of a nerve matrix membrane as a collagen nerve wrapping: a randomized, single-blind, multicenter clinical trial
[J]. Neural Regeneration Research, 2021, 16(8): 1652-1659.
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[6] |
Lixia Li, Yizhou Xu, Xianghai Wang, Jingmin Liu, Xiaofang Hu, Dandan Tan, Zhenlin Li, Jiasong Guo.
Ascorbic acid accelerates Wallerian degeneration after peripheral nerve injury
[J]. Neural Regeneration Research, 2021, 16(6): 1078-1085.
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[7] |
Yuan Liu, Richard K. Lee.
Cell transplantation to replace retinal ganglion cells faces challenges – the Switchboard Dilemma
[J]. Neural Regeneration Research, 2021, 16(6): 1138-1141.
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[8] |
Hajime Takase, Robert W. Regenhardt.
Motor tract reorganization after acute central nervous system injury: a translational perspective
[J]. Neural Regeneration Research, 2021, 16(6): 1144-1149.
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[9] |
Daniel J. Hellenbrand, Clayton L. Haldeman, Jae-Sung Lee, Angela G. Gableman, Elena K. Dai, Stephen D. Ortmann, Jerrod C. Gotchy, Kierra K. Miller, Adrianna M. Doucas, Nicole C. Nowak, William L. Murphy, Amgad S. Hanna.
Functional recovery after peripheral nerve injury via sustained growth factor delivery from mineral-coated microparticles
[J]. Neural Regeneration Research, 2021, 16(5): 871-877.
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[10] |
Zhongwu Liu, Hongqi Xin, Michael Chopp.
Axonal remodeling of the corticospinal tract during neurological recovery after stroke
[J]. Neural Regeneration Research, 2021, 16(5): 939-943.
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[11] |
Yuexian Cui, Xuelian Jin, Jun Young Choi, Byung Gon Kim.
Modeling subcortical ischemic white matter injury in rodents: unmet need for a breakthrough in translational research
[J]. Neural Regeneration Research, 2021, 16(4): 638-642.
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[12] |
Piyush Bhardwaj, Don Kulasiri, Sandhya Samarasinghe.
Modeling protein-protein interactions in axon initial segment to understand their potential impact on action potential initiation
[J]. Neural Regeneration Research, 2021, 16(4): 700-706.
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[13] |
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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[14] |
Joseph A. Shehadi, Steven M. Elzein, Paul Beery, M. Chance Spalding, Michelle Pershing.
Combined administration of platelet rich plasma and autologous bone marrow aspirate concentrate for spinal cord injury: a descriptive case series
[J]. Neural Regeneration Research, 2021, 16(2): 362-366.
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[15] |
Amanda Phuong Tran, Jerry Silver.
Cathepsins in neuronal plasticity
[J]. Neural Regeneration Research, 2021, 16(1): 26-35.
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