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PP4‐dependent HDAC3 dephosphorylation discriminates between axonal regeneration and regenerative failure

Authors :
José Antonio del Río
Radhika Puttagunta
John L. Bixby
Matt C. Danzi
Guiping Kong
Ilaria Palmisano
Dina P. Matheos
Thomas H. Hutson
Simone Di Giovanni
Andreu Matamoros-Angles
Kirsi Forsberg
Janine L. Kwapis
Vance Lemmon
Eilidh McLachlan
Luming Zhou
Marcelo A. Wood
Francesco De Virgiliis
Arnau Hervera
Wings for Life Spinal Cord Research Foundation
Rosetrees Trust
The Henry Smith Charity
Source :
EMBO J, The EMBO journal, vol 38, iss 13
Publication Year :
2019
Publisher :
John Wiley and Sons Inc., 2019.

Abstract

The molecular mechanisms discriminating between regenerative failure and success remain elusive. While a regeneration-competent peripheral nerve injury mounts a regenerative gene expression response in bipolar dorsal root ganglia (DRG) sensory neurons, a regeneration-incompetent central spinal cord injury does not. This dichotomic response offers a unique opportunity to investigate the fundamental biological mechanisms underpinning regenerative ability. Following a pharmacological screen with small molecule inhibitors targeting key epigenetic enzymes in DRG neurons we identified HDAC3 signalling as a novel candidate brake to axonal regenerative growth. In vivo, we determined that only a regenerative peripheral but not a central spinal injury induces an increase in calcium, which activates protein phosphatase 4 that in turn dephosphorylates HDAC3 thus impairing its activity and enhancing histone acetylation. Bioinformatics analysis of ex vivo H3K9ac ChIPseq and RNAseq from DRG followed by promoter acetylation and protein expression studies implicated HDAC3 in the regulation of multiple regenerative pathways. Finally, genetic or pharmacological HDAC3 inhibition overcame regenerative failure of sensory axons following spinal cord injury. Together, these data indicate that PP4-dependent HDAC3 dephosphorylation discriminates between axonal regeneration and regenerative failure.

Subjects

Subjects :
Male
GAP-43 EXPRESSION
Neurodegenerative
Regenerative Medicine
Medical and Health Sciences
Epigenesis, Genetic
Mice
0302 clinical medicine
Injury - Trauma - (Head and Spine)
Peripheral Nerve Injuries
Ganglia, Spinal
Gene expression
Phosphoprotein Phosphatases
2.1 Biological and endogenous factors
NERVE
Aetiology
Phosphorylation
nerve regeneration
Spinal Cord Injury
NEURONS
Spinal cord injury
11 Medical and Health Sciences
Cells, Cultured
0303 health sciences
Cultured
General Neuroscience
Articles
Biological Sciences
Cell biology
Histone
Neurological
Peripheral nerve injury
GROWTH
Female
Signal transduction
transcription
Life Sciences & Biomedicine
Biotechnology
Signal Transduction
Biochemistry & Molecular Biology
Physical Injury - Accidents and Adverse Effects
Spinal
1.1 Normal biological development and functioning
Cells
INHIBITION
Biology
NEURITE OUTGROWTH
General Biochemistry, Genetics and Molecular Biology
Histone Deacetylases
Dephosphorylation
Small Molecule Libraries
03 medical and health sciences
Genetic
Underpinning research
Information and Computing Sciences
Genetics
INJURY
medicine
Animals
Epigenetics
Molecular Biology
Traumatic Head and Spine Injury
030304 developmental biology
P53
Science & Technology
calcium
General Immunology and Microbiology
Animal
Regeneration (biology)
Neurosciences
HDAC3
Cell Biology
06 Biological Sciences
medicine.disease
spinal cord injury
Axons
Nerve Regeneration
Disease Models, Animal
Disease Models
Injury (total) Accidents/Adverse Effects
biology.protein
Ganglia
08 Information and Computing Sciences
030217 neurology & neurosurgery
Epigenesis
Developmental Biology

Details

Language :
English
Database :
OpenAIRE
Journal :
EMBO J, The EMBO journal, vol 38, iss 13
Accession number :
edsair.doi.dedup.....c12ae96b3460427ffb623c8bf9896849