Literature DB >> 31557646

DNA methylation and behavioral changes induced by neonatal spinal transection.

Tiffany S Doherty1, Aimee L Bozeman2, Tania L Roth1, Michele R Brumley3.   

Abstract

Although the importance of epigenetic mechanisms in behavioral development has been gaining attention in recent years, research has largely focused on the brain. To our knowledge, no studies to date have investigated epigenetic changes in the developing spinal cord to determine the dynamic manner in which the spinal epigenome may respond to environmental input during behavioral development. Animal studies demonstrate that spinal cord plasticity is heightened during early development, is somewhat preserved following neonatal transection, and that spinal injured animals are responsive to sensory feedback. Because epigenetic alterations have been implicated in brain plasticity and are highly responsive to experience, these alterations are promising candidates for molecular substrates of spinal plasticity as well. Thus, the current study investigated behavioral changes in the development of weight-bearing locomotion and epigenetic modifications in the spinal cord of infant rats following a neonatal low-thoracic spinal transection or sham surgery on postnatal day (P)1. Specifically, global levels of methylation and methylation status of the brain-derived neurotrophic factor (Bdnf) gene, a neurotrophin heavily involved in both CNS and behavioral plasticity, particularly in development, were examined in lumbar tissue harvested on P10 from sham and spinal-transected subjects. Behavioral results demonstrate that compared to shams, spinal-transected subjects exhibit significantly reduced partial-weight bearing hindlimb activity. Molecular data demonstrate group differences in global lumbar methylation levels as well as exon-specific group differences in Bdnf methylation. This study represents an initial step toward understanding the relationship between epigenetic mechanisms and plasticity associated with spinal cord and locomotor development.
Copyright © 2019 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  DNA methylation; Development; Epigenetics; Locomotion; Plasticity; Spinal cord

Mesh:

Substances:

Year:  2019        PMID: 31557646      PMCID: PMC6878986          DOI: 10.1016/j.infbeh.2019.101381

Source DB:  PubMed          Journal:  Infant Behav Dev        ISSN: 0163-6383


  83 in total

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