[1] |
Wei Liu, Jie Yu, Yi-Fan Wang, Qian-Qian Shan, Ya-Xian Wang.
[J]. Neural Regeneration Research, 2022, 17(on line): 1387-1392.
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[2] |
Jiaying Zheng, Madhuvika Murugan, Lingxiao Wang, Long-Jun Wu.
Microglial voltage-gated proton channel Hv1 in spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(6): 1183-1189.
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[3] |
Yi-Yao Liang, Li-Dan Zhang, Xi Luo, Li-Li Wu, Zhao-Wei Chen, Guang-Hao Wei, Kai-Qing Zhang, Ze-An Du, Ren-Zhi Li, Kwok-Fai So, Ang Li.
All roads lead to Rome — a review of the potential mechanisms by which exerkines exhibit neuroprotective effects in Alzheimer’s disease
[J]. Neural Regeneration Research, 2022, 17(6): 1210-1227.
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[4] |
Yi-Xin Wang, Jin-Zhu Bai, Zhen Lyu, Guang-Hao Zhang, Xiao-Lin Huo.
Oscillating field stimulation promotes axon regeneration and locomotor recovery after spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(6): 1318-1323.
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[5] |
Ying-Jie Zhao, Hao Qiao, Dong-Fan Liu, Jie Li, Jia-Xi Li, Su-E Chang, Teng Lu, Feng-Tao Li, Dong Wang, Hao-Peng Li, Xi-Jing He, Fang Wang.
Lithium promotes recovery after spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(6): 1324-1333.
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[6] |
Wen-Yuan Shen, Xuan-Hao Fu, Jun Cai, Wen-Chang Li, Bao-You Fan, Yi-Lin Pang, Chen-Xi Zhao, Muhtidir Abula, Xiao-Hong Kong, Xue Yao, Shi-Qing Feng.
Identification of key genes involved in recovery from spinal cord injury in adult zebrafish
[J]. Neural Regeneration Research, 2022, 17(6): 1334-1342.
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[7] |
Stuart I. Hodgetts, Sarah J. Lovett, D. Baron-Heeris, A. Fogliani, Marian Sturm, C. Van den Heuvel, Alan R. Harvey.
Effects of amyloid precursor protein peptide APP96-110, alone or with human mesenchymal stromal cells, on recovery after spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(6): 1376-1386.
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[8] |
Wei Liu, Jie Yu, Yi-Fan Wang, Qian-Qian Shan, Ya-Xian Wang.
Selection of suitable internal controls for gene expression normalization in rats with spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(6): 1387-1392.
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[9] |
F M Moinuddin, Yagiz Ugur Yolcu, Waseem Wahood, Jad Zreik, Sandy Goncalves, Anthony John Windebank, Wenchun Qu, Mohamad Bydon.
Time-to-enrollment in clinical trials investigating neurological recovery in chronic spinal cord injury: observations from a systematic review and ClinicalTrials.gov database
[J]. Neural Regeneration Research, 2022, 17(5): 953-958.
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[10] |
Julie Fourneau, Florence M. Bareyre.
Semaphorin7A: its role in the control of serotonergic circuits and functional recovery following spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(5): 959-962.
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[11] |
Hong-Da Wang, Zhi-Jian Wei, Jun-Jin Li, Shi-Qing Feng.
Application value of biofluid-based biomarkers for the diagnosis and treatment of spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(5): 963-971.
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[12] |
Xiao-Ying Zhang, Wei-Yong Yu, Wen-Jia Teng, Yi-Chuan Song, De-Gang Yang, Hong-Wei Liu, Song-Huai Liu, Xiao-Bing Li, Wen-Zhu Wang, Jian-Jun Li.
Effect of vocal respiratory training on respiratory function and respiratory neural plasticity in patients with cervical spinal cord injury: a randomized controlled trial
[J]. Neural Regeneration Research, 2022, 17(5): 1065-1071.
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[13] |
Shui-Sheng Yu, Zi-Yu Li#, Xin-Zhong Xu, Fei Yao, Yang Luo, Yan-Chang Liu, Li Cheng, Mei-Ge Zheng, Jue-Hua Jing.
M1-type microglia can induce astrocytes to deposit chondroitin sulfate proteoglycan after spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(5): 1072-1079.
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[14] |
Rui Zhao, Xue Wu, Xue-Yuan Bi, Hao Yang, Qian Zhang.
Baicalin attenuates blood-spinal cord barrier disruption and apoptosis through PI3K/Akt signaling pathway after spinal cord injury
[J]. Neural Regeneration Research, 2022, 17(5): 1080-1087.
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[15] |
Alberto F. Cintrón-Colón, Gabriel Almeida-Alves, Juliana M. VanGyseghem, John M. Spitsbergen.
GDNF to the rescue: GDNF delivery effects on motor neurons and nerves, and muscle re-innervation after peripheral nerve injuries
[J]. Neural Regeneration Research, 2022, 17(4): 748-753.
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