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Neural Regeneration Research|March 9, 2022
Temporal alterations in pericytes at the acute phase of ischemia/reperfusion in the mouse brainShuang Zhang, Xue-Jing Liao, Jia Wang, et al.Neural Regeneration Research|March 9, 2022
A neurovascular unit-on-a-chip: culture and differentiation of human neural stem cells in a three-dimensional microfluidic environmentWen-Juan Wei, Ya-Chen Wang, Xin Guan, et al.Neural Regeneration Research|March 9, 2022
A comparative analysis of differentially expressed genes in rostral and caudal regions after spinal cord injury in ratsXue-Min Cao, Sheng-Long Li, Yu-Qi Cao, et al.Neural Regeneration Research|March 9, 2022
SARM1 participates in axonal degeneration and mitochondrial dysfunction in prion diseaseMeng-Yu Lai, Jie Li, Xi-Xi Zhang, et al.Neural Regeneration Research|March 9, 2022
Expression and regulatory network of long noncoding RNA in rats after spinal cord hemisection injuryWei Liu, Jin-Cheng Tao, Sheng-Ze Zhu, et al.Neural Regeneration Research|March 9, 2022
Magnetic labeling of primary murine monocytes using very small superparamagnetic iron oxide nanoparticlesMartin Pohland, Christoph Pohland, Jürgen Kiwit, et al.Neural Regeneration Research|January 29, 2021
Chronic peripheral inflammation: a possible contributor to neurodegenerative diseasesPatrick Süβ, Addison J Lana, Johannes C M SchlachetzkiNeural Regeneration Research|January 29, 2021
What do we know about the role of lncRNAs in multiple sclerosis?Viviana Nociti, Massimo SantoroNeural Regeneration Research|January 29, 2021
The future of retinal gene therapy: evolving from subretinal to intravitreal vector deliveryMaya Ross, Ron OfriNeural Regeneration Research|January 29, 2021
VX-765 reduces neuroinflammation after spinal cord injury in miceJing Chen, Yu-Qing Chen, Yu-Jiao Shi, et al.Pageof 455