Cargando…

A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function

Axon regeneration is an energy-demanding process that requires active mitochondrial transport. In contrast to the central nervous system (CNS), axonal mitochondrial transport in regenerating axons of the peripheral nervous system (PNS) increases within hours and sustains for weeks after injury. Yet,...

Descripción completa

Detalles Bibliográficos
Autores principales: Au, Ngan Pan Bennett, Chand, Raza, Kumar, Gajendra, Asthana, Pallavi, Tam, Wing Yip, Tang, Kin Man, Ko, Chi-Chiu, Ma, Chi Him Eddie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9636930/
https://www.ncbi.nlm.nih.gov/pubmed/36306327
http://dx.doi.org/10.1073/pnas.2121273119
_version_ 1784825064526446592
author Au, Ngan Pan Bennett
Chand, Raza
Kumar, Gajendra
Asthana, Pallavi
Tam, Wing Yip
Tang, Kin Man
Ko, Chi-Chiu
Ma, Chi Him Eddie
author_facet Au, Ngan Pan Bennett
Chand, Raza
Kumar, Gajendra
Asthana, Pallavi
Tam, Wing Yip
Tang, Kin Man
Ko, Chi-Chiu
Ma, Chi Him Eddie
author_sort Au, Ngan Pan Bennett
collection PubMed
description Axon regeneration is an energy-demanding process that requires active mitochondrial transport. In contrast to the central nervous system (CNS), axonal mitochondrial transport in regenerating axons of the peripheral nervous system (PNS) increases within hours and sustains for weeks after injury. Yet, little is known about targeting mitochondria in nervous system repair. Here, we report the induction of sustained axon regeneration, neural activities in the superior colliculus (SC), and visual function recovery after optic nerve crush (ONC) by M1, a small molecule that promotes mitochondrial fusion and transport. We demonstrated that M1 enhanced mitochondrial dynamics in cultured neurons and accelerated in vivo axon regeneration in the PNS. Ex vivo time-lapse imaging and kymograph analysis showed that M1 greatly increased mitochondrial length, axonal mitochondrial motility, and transport velocity in peripheral axons of the sciatic nerves. Following ONC, M1 increased the number of axons regenerating through the optic chiasm into multiple subcortical areas and promoted the recovery of local field potentials in the SC after optogenetic stimulation of retinal ganglion cells, resulting in complete recovery of the pupillary light reflex, and restoration of the response to looming visual stimuli was detected. M1 increased the gene expression of mitochondrial fusion proteins and major axonal transport machinery in both the PNS and CNS neurons without inducing inflammatory responses. The knockdown of two key mitochondrial genes, Opa1 or Mfn2, abolished the growth-promoting effects of M1 after ONC, suggesting that maintaining a highly dynamic mitochondrial population in axons is required for successful CNS axon regeneration.
format Online
Article
Text
id pubmed-9636930
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-96369302023-04-28 A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function Au, Ngan Pan Bennett Chand, Raza Kumar, Gajendra Asthana, Pallavi Tam, Wing Yip Tang, Kin Man Ko, Chi-Chiu Ma, Chi Him Eddie Proc Natl Acad Sci U S A Biological Sciences Axon regeneration is an energy-demanding process that requires active mitochondrial transport. In contrast to the central nervous system (CNS), axonal mitochondrial transport in regenerating axons of the peripheral nervous system (PNS) increases within hours and sustains for weeks after injury. Yet, little is known about targeting mitochondria in nervous system repair. Here, we report the induction of sustained axon regeneration, neural activities in the superior colliculus (SC), and visual function recovery after optic nerve crush (ONC) by M1, a small molecule that promotes mitochondrial fusion and transport. We demonstrated that M1 enhanced mitochondrial dynamics in cultured neurons and accelerated in vivo axon regeneration in the PNS. Ex vivo time-lapse imaging and kymograph analysis showed that M1 greatly increased mitochondrial length, axonal mitochondrial motility, and transport velocity in peripheral axons of the sciatic nerves. Following ONC, M1 increased the number of axons regenerating through the optic chiasm into multiple subcortical areas and promoted the recovery of local field potentials in the SC after optogenetic stimulation of retinal ganglion cells, resulting in complete recovery of the pupillary light reflex, and restoration of the response to looming visual stimuli was detected. M1 increased the gene expression of mitochondrial fusion proteins and major axonal transport machinery in both the PNS and CNS neurons without inducing inflammatory responses. The knockdown of two key mitochondrial genes, Opa1 or Mfn2, abolished the growth-promoting effects of M1 after ONC, suggesting that maintaining a highly dynamic mitochondrial population in axons is required for successful CNS axon regeneration. National Academy of Sciences 2022-10-28 2022-11-01 /pmc/articles/PMC9636930/ /pubmed/36306327 http://dx.doi.org/10.1073/pnas.2121273119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Au, Ngan Pan Bennett
Chand, Raza
Kumar, Gajendra
Asthana, Pallavi
Tam, Wing Yip
Tang, Kin Man
Ko, Chi-Chiu
Ma, Chi Him Eddie
A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title_full A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title_fullStr A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title_full_unstemmed A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title_short A small molecule M1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
title_sort small molecule m1 promotes optic nerve regeneration to restore target-specific neural activity and visual function
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9636930/
https://www.ncbi.nlm.nih.gov/pubmed/36306327
http://dx.doi.org/10.1073/pnas.2121273119
work_keys_str_mv AT aunganpanbennett asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT chandraza asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT kumargajendra asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT asthanapallavi asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT tamwingyip asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT tangkinman asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT kochichiu asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT machihimeddie asmallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT aunganpanbennett smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT chandraza smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT kumargajendra smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT asthanapallavi smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT tamwingyip smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT tangkinman smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT kochichiu smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction
AT machihimeddie smallmoleculem1promotesopticnerveregenerationtorestoretargetspecificneuralactivityandvisualfunction