[1] |
Bochao Liu, Mo Li, Lingyan Zhang, Zhiguo Chen, Paul Lu.
Motor neuron replacement therapy for amyotrophic lateral sclerosis
[J]. Neural Regeneration Research, 2022, 17(8): 1633-1639.
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[2] |
Carmen M. Labandeira, Arturo Fraga-Bau, David Arias Ron, Elena Alvarez-Rodriguez, Pablo Vicente-Alba, Javier Lago-Garma, Ana I. Rodriguez-Perez.
Parkinson’s disease and diabetes mellitus: common mechanisms and treatment repurposing
[J]. Neural Regeneration Research, 2022, 17(8): 1652-1658.
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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] |
Fatemeh Zahedipour, Seyede Atefe Hosseini, Neil C. Henney, George E. Barreto, Amirhossein Sahebkar.
Phytochemicals as inhibitors of tumor necrosis factor alpha and neuroinflammatory responses in neurodegenerative diseases
[J]. Neural Regeneration Research, 2022, 17(8): 1675-1684.
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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] |
Bridget Martinez, Philip V. Peplow.
MicroRNA biomarkers in frontotemporal dementia and to distinguish from Alzheimer’s disease and amyotrophic lateral sclerosis
[J]. Neural Regeneration Research, 2022, 17(7): 1412-1422.
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[8] |
Yue Liu, Cai-Hui Wei, Cheng Li, Wen-Zhi Chen, Yu Zhu, Ren-Shi Xu.
Phosphoinositide-3-kinase regulatory subunit 4 participates in the occurrence and development of amyotrophic lateral sclerosis by regulating autophagy
[J]. Neural Regeneration Research, 2022, 17(7): 1609-1616.
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[9] |
Bart Nieuwenhuis, Richard Eva.
Promoting axon regeneration in the central nervous system by increasing PI3-kinase signaling
[J]. Neural Regeneration Research, 2022, 17(6): 1172-1182.
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[10] |
Carely Hernandez, Surabhi Shukla.
Liposome based drug delivery as a potential treatment option for Alzheimer’s disease
[J]. Neural Regeneration Research, 2022, 17(6): 1190-1198.
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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] |
Xin-Quan Gu, Ying Liu, Jie-Bing Gu, Lin-Fang Li, Ling-Ling Fu, Xue-Mei Han.
Correlations between hippocampal functional connectivity, structural changes, and clinical data in patients with relapsing-remitting multiple sclerosis: a case-control study using multimodal magnetic resonance imaging
[J]. Neural Regeneration Research, 2022, 17(5): 1115-1124.
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[13] |
Qing Gao, Rui Chen, Liang Wu, Qing Huang, Xi-Xi Wang, You-Yong Tian, Ying-Dong Zhang.
Angiotensin-(1–7) reduces α-synuclein aggregation by enhancing autophagic activity in Parkinson’s disease
[J]. Neural Regeneration Research, 2022, 17(5): 1138-1145.
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[14] |
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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[15] |
Bridget Martinez, Philip V. Peplow.
MicroRNA expression in animal models of amyotrophic lateral sclerosis and potential therapeutic approaches
[J]. Neural Regeneration Research, 2022, 17(4): 728-740.
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