Gsx1 promotes locomotor functional recovery after spinal cord injury is a research paper published in Molecular Therapy (2021). On theSindex it has a DataRank of 0. It has been cited 72 times.
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National Institutes of Health
Grant: T32GM008339
New Jersey Commission on Spinal Cord Research
Grant: 15IRG006
New Jersey Commission on Spinal Cord Research
Grant: CSCR12FEL001
National Science Foundation
Grant: CHE-1429062
National Science Foundation
Grant: R01 1R01DC016612
National Science Foundation
Grant: 1429062
MRI: Development of multifunctional scanning probe microscope for nanofabrication and nanomaterials research
National Institutes of Health
Grant: 5R01DC016612-04
A Bio-Inspired Artificial Transcription Factor for Regeneration of Functional Hair Cells
National Institutes of Health
Grant: 5T32GM008339-17
Rutgers-UNDNJ Biotechnology Training Program
NIGMS NIH HHS
Grant: R25 GM055145
NIDCD NIH HHS
Grant: R01 DC016612
NIGMS NIH HHS
Grant: T32 GM139804
NIGMS NIH HHS
Grant: T32 GM135141
FWCI
6.86
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 1 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 1 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 2 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 2 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 3 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 3 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 4 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 4 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 5 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 5 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 6 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 6 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 7 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein
Additional file 7 of Enhancing structural plasticity of PC12 neurons during differentiation and neurite regeneration with a catalytically inactive mutant version of the zRICH protein