[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] |
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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[3] |
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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[4] |
Jia-Nan Yan, Hai-Ying Zhang, Jun-Rui Li, Ying Chen, Yong-Cheng Jiang, Jia-Bing Shen, Kai-Fu Ke, Xiao-Su Gu.
Schwann cells differentiated from skin-derived precursors provide neuroprotection via autophagy inhibition in a cellular model of Parkinson’s disease
[J]. Neural Regeneration Research, 2022, 17(6): 1357-1363.
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[5] |
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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[6] |
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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[7] |
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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[8] |
Rita Caridade Silva, Helena Sofia Domingues, António J. Salgado, Fábio G. Teixeira.
From regenerative strategies to pharmacological approaches: can we fine-tune treatment for Parkinson’s disease?
[J]. Neural Regeneration Research, 2022, 17(5): 933-936.
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[9] |
Damien P. Kuffler.
Can lithium enhance the extent of axon regeneration and neurological recovery following peripheral nerve trauma?
[J]. Neural Regeneration Research, 2022, 17(5): 948-952.
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[10] |
Dai-Di Li, Chang-Qing Zheng, Feng Zhang, Jing-Shan Shi.
Potential neuroprotection by Dendrobium nobile Lindl alkaloid in Alzheimer’s disease models
[J]. Neural Regeneration Research, 2022, 17(5): 972-977.
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[11] |
Andreas Rogalewski, Wolf-Rüdiger Schäbitz.
Stroke recovery enhancing therapies: lessons from recent clinical trials
[J]. Neural Regeneration Research, 2022, 17(4): 717-720.
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[12] |
Yan Lu, Qi Shan, Mei Ling, Xi-An Ni, Su-Su Mao, Bin Yu, Qian-Qian Cao.
Identification of key genes involved in axon regeneration and Wallerian degeneration by weighted gene co-expression network analysis
[J]. Neural Regeneration Research, 2022, 17(4): 911-919.
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[13] |
Kun-Che Chang.
Influence of Sox protein SUMOylation on neural development and regeneration
[J]. Neural Regeneration Research, 2022, 17(3): 477-481.
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[14] |
Jakša Vukojević, Marija Milavić, Darko Perović, Spomenko Ilić, Andrea Zemba Čilić, Nataša Đuran, Sanja Štrbe, Zoran Zoričić, Igor Filipčić, Petrana Brečić, Sven Seiverth, Predrag Sikirić.
Pentadecapeptide BPC 157 and the central nervous system
[J]. Neural Regeneration Research, 2022, 17(3): 482-487.
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[15] |
Teresa de los Reyes, Sergio Casas-Tintó.
Neural functions of small heat shock proteins
[J]. Neural Regeneration Research, 2022, 17(3): 512-515.
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