Cargando…

Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration

Many neurons in the adult central nervous system, including retinal ganglion cells (RGCs), degenerate and die after injury. Early axon protein and organelle trafficking failure is a key component in many neurodegenerative disorders yet changes to axoplasmic transport in disease models have not been...

Descripción completa

Detalles Bibliográficos
Autores principales: Shah, Sahil H, Schiapparelli, Lucio M, Ma, Yuanhui, Yokota, Satoshi, Atkins, Melissa, Xia, Xin, Cameron, Evan G, Huang, Thanh, Saturday, Sarah, Sun, Catalina B, Knasel, Cara, Blackshaw, Seth, Yates, John R, Cline, Hollis T, Goldberg, Jeffrey L
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8947766/
https://www.ncbi.nlm.nih.gov/pubmed/35259089
http://dx.doi.org/10.7554/eLife.68148
_version_ 1784674517989195776
author Shah, Sahil H
Schiapparelli, Lucio M
Ma, Yuanhui
Yokota, Satoshi
Atkins, Melissa
Xia, Xin
Cameron, Evan G
Huang, Thanh
Saturday, Sarah
Sun, Catalina B
Knasel, Cara
Blackshaw, Seth
Yates, John R
Cline, Hollis T
Goldberg, Jeffrey L
author_facet Shah, Sahil H
Schiapparelli, Lucio M
Ma, Yuanhui
Yokota, Satoshi
Atkins, Melissa
Xia, Xin
Cameron, Evan G
Huang, Thanh
Saturday, Sarah
Sun, Catalina B
Knasel, Cara
Blackshaw, Seth
Yates, John R
Cline, Hollis T
Goldberg, Jeffrey L
author_sort Shah, Sahil H
collection PubMed
description Many neurons in the adult central nervous system, including retinal ganglion cells (RGCs), degenerate and die after injury. Early axon protein and organelle trafficking failure is a key component in many neurodegenerative disorders yet changes to axoplasmic transport in disease models have not been quantified. We analyzed early changes in the protein ‘transportome’ from RGC somas to their axons after optic nerve injury and identified transport failure of an anterograde motor protein Kif5a early in RGC degeneration. We demonstrated that manipulating Kif5a expression affects anterograde mitochondrial trafficking in RGCs and characterized axon transport in Kif5a knockout mice to identify proteins whose axon localization was Kif5a-dependent. Finally, we found that knockout of Kif5a in RGCs resulted in progressive RGC degeneration in the absence of injury. Together with expression data localizing Kif5a to human RGCs, these data identify Kif5a transport failure as a cause of RGC neurodegeneration and point to a mechanism for future therapeutics.
format Online
Article
Text
id pubmed-8947766
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-89477662022-03-25 Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration Shah, Sahil H Schiapparelli, Lucio M Ma, Yuanhui Yokota, Satoshi Atkins, Melissa Xia, Xin Cameron, Evan G Huang, Thanh Saturday, Sarah Sun, Catalina B Knasel, Cara Blackshaw, Seth Yates, John R Cline, Hollis T Goldberg, Jeffrey L eLife Neuroscience Many neurons in the adult central nervous system, including retinal ganglion cells (RGCs), degenerate and die after injury. Early axon protein and organelle trafficking failure is a key component in many neurodegenerative disorders yet changes to axoplasmic transport in disease models have not been quantified. We analyzed early changes in the protein ‘transportome’ from RGC somas to their axons after optic nerve injury and identified transport failure of an anterograde motor protein Kif5a early in RGC degeneration. We demonstrated that manipulating Kif5a expression affects anterograde mitochondrial trafficking in RGCs and characterized axon transport in Kif5a knockout mice to identify proteins whose axon localization was Kif5a-dependent. Finally, we found that knockout of Kif5a in RGCs resulted in progressive RGC degeneration in the absence of injury. Together with expression data localizing Kif5a to human RGCs, these data identify Kif5a transport failure as a cause of RGC neurodegeneration and point to a mechanism for future therapeutics. eLife Sciences Publications, Ltd 2022-03-08 /pmc/articles/PMC8947766/ /pubmed/35259089 http://dx.doi.org/10.7554/eLife.68148 Text en © 2022, Shah et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Shah, Sahil H
Schiapparelli, Lucio M
Ma, Yuanhui
Yokota, Satoshi
Atkins, Melissa
Xia, Xin
Cameron, Evan G
Huang, Thanh
Saturday, Sarah
Sun, Catalina B
Knasel, Cara
Blackshaw, Seth
Yates, John R
Cline, Hollis T
Goldberg, Jeffrey L
Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title_full Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title_fullStr Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title_full_unstemmed Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title_short Quantitative transportomics identifies Kif5a as a major regulator of neurodegeneration
title_sort quantitative transportomics identifies kif5a as a major regulator of neurodegeneration
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8947766/
https://www.ncbi.nlm.nih.gov/pubmed/35259089
http://dx.doi.org/10.7554/eLife.68148
work_keys_str_mv AT shahsahilh quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT schiapparelliluciom quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT mayuanhui quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT yokotasatoshi quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT atkinsmelissa quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT xiaxin quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT cameronevang quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT huangthanh quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT saturdaysarah quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT suncatalinab quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT knaselcara quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT blackshawseth quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT yatesjohnr quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT clinehollist quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration
AT goldbergjeffreyl quantitativetransportomicsidentifieskif5aasamajorregulatorofneurodegeneration