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Riemens, R. J. M.

Publications and source records attributed to Riemens, R. J. M..

2 recordsLinked to original sources

Repetitive neonatal pain increases spinal cord DNA methylation of the μ-opioid receptor

Repetitive neonatal painful procedures experienced in the neonatal intensive care unit (NICU) are known to alter the development of the nociceptive system and have long-lasting consequences, notably lower post-operative {micro}-opioid receptor levels in the spinal cord. Given the influence of the NICU on the epigenome, the present study hypothesized that neonatal procedural pain alters the DNA methylation status of the opioid receptor mu 1 encoding gene (Mor-1) in the spinal cord and dorsal root ganglions (DRGs). To this end, the needle prick model of repetitive neonatal pain was used, and methylation of Mor-1 promotor was assessed in the spinal cord and the DRG using bisulfite pyrosequencing. Our findings demonstrated that neonatal procedural pain increased spinal cord Mor-1 promotor DNA methylation in the ipsilateral side as compared to the contralateral side, an effect that was not observed in the control animals, nor in the DRG. We also identified a behaviorally-associated CpG site following neonatal needle pricks. This study is the first to highlight a localized and noxious-stimuli-dependent effect of repetitive neonatal procedural pain on Mor-1 promotor methylation and emphasizes the need to explore the effects of repetitive neonatal procedural pain on the epigenome. ImpactO_LIThis study reveals that repetitive neonatal procedural pain increases DNA methylation of the Mor-1 promoter in the spinal cord of neonatal rats. C_LIO_LIThis is the first study to identify an effect of neonatal procedural pain on DNA methylation, emphasizing the critical need for further investigation into the epigenetic consequences of neonatal procedural pain. C_LIO_LIThese insights could lead to better management and treatment strategies to mitigate the long-term impacts of early pain exposure on neurodevelopment and behavior. C_LI

neuroscience↗

Epigenome-wide profiling in the dorsal raphe nucleus highlights cell-type-specific changes in TNXB in Alzheimer's disease

Recent studies have demonstrated that the dorsal raphe nucleus (DRN) is among the first brain regions affected in Alzheimers disease. Hence, in this study we conducted the first comprehensive epigenetic analysis of the DRN in AD, targeting both bulk tissue and single isolated cells. The Illumina Infinium MethylationEPIC BeadChip array was used to analyze the bulk tissue, assessing differentially modified positions (DMoPs) and regions (DMoRs) associated with Braak stage. The strongest Braak stage-associated DMoR in TNXB was targeted in a second patient cohort utilizing single laser-capture microdissected serotonin-positive (5-HT+) and -negative (5-HT-) cells isolated from the DRN. Our study revealed previously identified epigenetic loci, including TNXB and PGLYRP1, and novel loci, including RBMXL2, CAST, GNAT1, MALAT1, and DNAJB13. Strikingly, we found that the methylation profile of TNXB depends both on disease phenotype and cell type analyzed, emphasizing the significance of single cell(-type) neuroepigenetic studies in AD.

neuroscience↗