[1] |
Jian-Song Zhang, Pin-Pin Hou, Shuai Shao, Anatol Manaenko, Zhi-Peng Xiao, Yan Chen, Bing Zhao, Feng Jia, Xiao-Hua Zhang, Qi-Yong Mei, Qin Hu.
microRNA-455-5p alleviates neuroinflammation in cerebral ischemia/reperfusion injury
[J]. Neural Regeneration Research, 2022, 17(on line): 1769-1775.
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[2] |
Tayana Silva de Carvalho.
Calorie restriction or dietary restriction: how far they can protect the brain against neurodegenerative diseases?
[J]. Neural Regeneration Research, 2022, 17(8): 1640-1644.
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[3] |
Waqas Tahir, Simrika Thapa, Hermann M. Schatzl.
Astrocyte in prion disease: a double-edged sword
[J]. Neural Regeneration Research, 2022, 17(8): 1659-1665.
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[4] |
Alejandro R. Roda, Gabriel Serra-Mir, Laia Montoliu-Gaya, Lidia Tiessler, Sandra Villegas.
Amyloid-beta peptide and tau protein crosstalk in Alzheimer’s disease
[J]. Neural Regeneration Research, 2022, 17(8): 1666-1674.
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[5] |
Jian-Song Zhang, Pin-Pin Hou, Shuai Shao, Anatol Manaenko, Zhi-Peng Xiao, Yan Chen, Bing Zhao, Feng Jia, Xiao-Hua Zhang, Qi-Yong Mei, Qin Hu.
microRNA-455-5p alleviates neuroinflammation in cerebral ischemia/reperfusion injury
[J]. Neural Regeneration Research, 2022, 17(8): 1769-1775.
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[6] |
Xi-Chen Zhu, Lu Liu, Wen-Zhuo Dai, Tao Ma.
Crry silencing alleviates Alzheimer’s disease injury by regulating neuroinflammatory cytokines and the complement system
[J]. Neural Regeneration Research, 2022, 17(8): 1841-1849.
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[7] |
Junfan Chen, Zhiyuan Vera Zheng, Gang Lu, Wai Yee Chan, Yisen Zhang, George Kwok Chu Wong.
Microglia activation, classification and microglia-mediated neuroinflammatory modulators in subarachnoid hemorrhage
[J]. Neural Regeneration Research, 2022, 17(7): 1404-1411.
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[8] |
Santiago E. Charif, M. Florencia Vassallu, Lara Salvañal, Lionel M. Igaz.
Protein synthesis modulation as a therapeutic approach for amyotrophic lateral sclerosis and frontotemporal dementia
[J]. Neural Regeneration Research, 2022, 17(7): 1423-1430.
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[9] |
James A. Conway, Edgar R. Kramer.
Is activation of GDNF/RET signaling the answer for successful treatment of Parkinson’s disease? A discussion of data from the culture dish to the clinic
[J]. Neural Regeneration Research, 2022, 17(7): 1462-1467.
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[10] |
Angela Ka Wai Lai, Tsz Chung Ng, Victor Ka Lok Hung, Ka Cheung Tam, Chi Wai Cheung, Sookja Kim Chung, Amy Cheuk Yin Lo.
Exacerbated VEGF up-regulation accompanies diabetes-aggravated hemorrhage in mice after experimental cerebral ischemia and delayed reperfusion
[J]. Neural Regeneration Research, 2022, 17(7): 1566-1575.
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[11] |
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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[12] |
Muhammad Ali Haidar, Zaynab Shakkour, Mohammad Amine Reslan, Nadine Al-Haj, Perla Chamoun, Karl Habashy, Hasan Kaafarani, Shima Shahjouei, Sarah H. Farran, Abdullah Shaito, Esber S. Saba, Bassam Badran, Mirna Sabra, Firas Kobeissy, Maya Bizri.
SARS-CoV-2 involvement in central nervous system tissue damage
[J]. Neural Regeneration Research, 2022, 17(6): 1228-1239.
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[13] |
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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[14] |
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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[15] |
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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