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TDP-43 maximizes nerve conduction velocity by repressing a cryptic exon for paranodal junction assembly in Schwann cells
Kae Jiun Chang
, Ira Agrawal
, Anna Vainshtein
, Wan Yun Ho
, Wendy Xin
, Greg Tucker-Kellogg
, Keiichiro Susuki
, Elior Peles
, Shuo Chien Ling
, Jonah R. Chan
Research output
:
Contribution to journal
›
Article
›
peer-review
17
Scopus citations
Overview
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Dive into the research topics of 'TDP-43 maximizes nerve conduction velocity by repressing a cryptic exon for paranodal junction assembly in Schwann cells'. Together they form a unique fingerprint.
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Keyphrases
Cell Adhesion Molecules
11%
Central Nervous System
11%
Cryptic Exon
100%
Glial Cells
11%
Junction Assembly
100%
Loss Function
11%
Motor Deficits
11%
Nerve Conduction
11%
Nerve Conduction Velocity
100%
Neurofascin
33%
Non-cell Autonomous
11%
Nonsense-mediated Decay
11%
Oligodendrocyte
11%
Paranodal
11%
Paranodal Junction
100%
Paranode
33%
Peripheral Nerve Conduction
11%
Saltatory Conduction
11%
Schwann Cells
100%
TAR DNA-binding Protein 43 (TDP-43)
100%
Neuroscience
Cell Adhesion Proteins
33%
Central Nervous System
33%
Conduction Velocity
100%
Exon
100%
Messenger RNA
66%
Microglia
33%
Nerve Conduction
100%
Nonsense Mediated mRNA Decay
33%
Oligodendrocyte
33%
Peripheral Nerve
33%
Schwann Cell
100%