[1] |
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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[2] |
Samuel Peña-Díaz, Salvador Ventura.
One ring is sufficient to inhibit α-synuclein aggregation
[J]. Neural Regeneration Research, 2022, 17(3): 508-511.
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[3] |
Yaojun Ju, Kin Yip Tam.
Pathological mechanisms and therapeutic strategies for Alzheimer’s disease
[J]. Neural Regeneration Research, 2022, 17(3): 543-549.
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[4] |
Lorena Perdices, Lorena Fuentes-Broto, Francisco Segura, Ana Cavero, Elvira Orduna-Hospital, Gema Insa-Sánchez, Ana Isabel Sánchez-Cano, Laura Fernández-Sánchez, Nicolás Cuenca, Isabel Pinilla.
Systemic epigallocatechin gallate protects against retinal degeneration and hepatic oxidative stress in the P23H-1 rat
[J]. Neural Regeneration Research, 2022, 17(3): 625-631.
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[5] |
Alexis D. Rickman, Addison Hilyard, Bradlee L. Heckmann.
Dying by fire: noncanonical functions of autophagy proteins in neuroinflammation and neurodegeneration
[J]. Neural Regeneration Research, 2022, 17(2): 246-250.
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[6] |
Rita F. Marques, Kent E. Duncan.
SYNGR4 and PLEKHB1 deregulation in motor neurons of amyotrophic lateral sclerosis models: potential contributions to pathobiology
[J]. Neural Regeneration Research, 2022, 17(2): 266-270.
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[7] |
Susan R. Goulding, Jayanth Anantha, Louise M. Collins, Aideen M. Sullivan, Gerard W. O’Keeffe.
Growth differentiation factor 5: a neurotrophic factor with neuroprotective potential in Parkinson’s disease
[J]. Neural Regeneration Research, 2022, 17(1): 38-44.
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[8] |
Rossella Russo, Carlo Nucci, Annagrazia Adornetto.
The promise of neuroprotection by dietary restriction in glaucoma
[J]. Neural Regeneration Research, 2022, 17(1): 45-47.
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[9] |
Lidia Larizza, Luciano Calzari, Valentina Alari, Silvia Russo.
Genes for RNA-binding proteins involved in neural-specific functions and diseases are downregulated in Rubinstein-Taybi iNeurons
[J]. Neural Regeneration Research, 2022, 17(1): 5-14.
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[10] |
Patrick Süβ, Addison J. Lana, Johannes C. M. Schlachetzki.
Chronic peripheral inflammation: a possible contributor to neurodegenerative diseases
[J]. Neural Regeneration Research, 2021, 16(9): 1711-1714.
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[11] |
Yu Di, Yue Wang, Xue Wang, Qing-Zhu Nie.
Effects of long non-coding RNA myocardial infarction-associated transcript on retinal neovascularization in a newborn mouse model of oxygen-induced retinopathy
[J]. Neural Regeneration Research, 2021, 16(9): 1877-1881.
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[12] |
Isaac G. Onyango, James P. Bennett, Jr, Gorazd B. Stokin.
Regulation of neuronal bioenergetics as a therapeutic strategy in neurodegenerative diseases
[J]. Neural Regeneration Research, 2021, 16(8): 1467-1482.
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[13] |
Stefan Kassumeh, Gregor R. Weber, Matthias Nobl, Siegfried G. Priglinger, Andreas Ohlmann.
The neuroprotective role of Wnt signaling in the retina
[J]. Neural Regeneration Research, 2021, 16(8): 1524-1528.
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[14] |
Ke-Ke Chen, Zhao-Hui Jin, Lei Gao, Lin Qi, Qiao-Xia Zhen, Cui Liu, Ping Wang, Yong-Hong Liu, Rui-Dan Wang, Yan-Jun Liu, Jin-Ping Fang, Yuan Su, Xiao-Yan Yan, Ai-Xian Liu, Bo-Yan Fang.
Efficacy of short-term multidisciplinary intensive rehabilitation in patients with different Parkinson’s disease motor subtypes: a prospective pilot study with 3-month follow-up
[J]. Neural Regeneration Research, 2021, 16(7): 1336-1343.
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[15] |
Tianci Chu, Lisa B.E. Shields, Wenxin Zeng, Yi Ping Zhang, Yuanyi Wang, Gregory N. Barnes, Christopher B. Shields, Jun Cai.
Dynamic glial response and crosstalk in demyelination-remyelination and neurodegeneration processes
[J]. Neural Regeneration Research, 2021, 16(7): 1359-1368.
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