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Bruggeman, M.

Publications and source records attributed to Bruggeman, M..

4 recordsLinked to original sources

Sex differences in epigenetic mechanisms of chronic pain-induced depression

Chronic pain is a major risk factor for depression, yet the molecular mechanisms underlying this comorbidity remain poorly understood, particularly in women. To address this gap, we systematically investigated sex differences in the epigenomic adaptations associated with chronic pain-induced depressive-like behaviors. Neuropathic pain was induced in the mouse using the sciatic nerve cuff model, and molecular analyses were performed in the anterior cingulate cortex (ACC), a key brain region implicated in both pain and affective processing. We profiled genome-wide DNA methylation, three histone modifications (H3K27ac, H3K4me1, and H3K27me3), and gene expression using EM-seq, Cut&Tag sequencing, and RNA-seq, respectively. Differential analyses were conducted for each molecular layer and integrated through gene co-expression network analysis. We found that chronic pain induced extensive remodeling of DNA methylation and histone modification landscapes in both sexes. Strikingly, these changes occurred at largely distinct genomic loci in males and females, revealing pronounced sex-specific epigenetic responses. Despite this divergence, the affected regions displayed similar regulatory organization, including enrichment at shared genic features, transcription factor binding sites, and chromatin profiles. Importantly, these adaptations converged on partly overlapping genes, biological pathways, and co-expression modules across sexes. The most affected gene modules were predominantly associated with synapse-related processes, consistent with previous knowledge, and were closely connected to modules enriched for epigenetic regulatory functions. Together, these findings indicate that chronic pain engages sex-specific epigenetic mechanisms that ultimately converge on common functional outcomes. Such convergence highlights the potential value of targeting sex-specific epigenetic substrates in future therapeutic strategies.

neuroscience↗

The INO80-EEN complex prevents genomic rearrangements at protein coding genes regions

Plants are continuously exposed to a myriad of DNA-damaging agents, including environmental cues such as sunlight. At the cellular level, plants respond to DNA damage by activating DNA damage response (DDR) pathways, in which chromatin remodelers play an important role. Among them, the evolutionary conserved INO80 complex (INO80c) has been shown in Arabidopsis to play a key role in DDR, notably by positively regulating Homologous Recombination (HR). Arabidopsis EIN6 ENHANCER (EEN) is the homolog of Yeast INO EIGHTY SUBUNIT 6 and interacts with the N-terminal region of INO80 in the INO80c. Using plant phenotyping, cellular and molecular biology, and third-generation sequencing technology we investigated how INO80 and EEN regulate plant development and genome integrity. We uncovered new roles for INO80 and EEN in plant growth and for INO80 in fine tuning endoreduplication. In addition, linear genome analysis revealed an important and unexpected function for the INO80-EEN complex in preventing Protein Coding Genes (PCGs) from structural rearrangements in somatic tissue and upon exposure to UV-B. Therefore, our results shed new light on the previously overlooked roles of INO80 and EEN in protecting genome integrity at PCGs.

plant biology↗

The DNA methylation enzymatic machinery in substance use disorders: a systematic review

Substance use disorders (SUD) are chronic affections defined by similar symptoms across a variety of psychoactive drugs, including alcohol, cocaine, opioids, or methamphetamine. Epigenetic mechanisms such as DNA methylation represent key candidates to help explain the long-lasting effect of these drugs, as well as inter-individual variation in vulnerability. Here, we systematically reviewed current knowledge on the role of DNA methylation and the related enzymatic machinery in rodent models of SUD. Using a prospectively registered methodology, 99 articles were prioritized. A first set of studies manipulated the expression or activity of methylation or demethylation pathways. Depending on the brain region or drug considered, SUD-related behavioral and molecular manifestations were bidirectionally modulated, suggesting both pathogenic and protective roles for drug-induced methylomic plasticity. A second set of articles focused on candidate genes. Although significant heterogeneity across experimental models, brain regions or gene targets resulted in an absence of replicated findings, available data nevertheless support the notion that drugs of abuse trigger DNA methylation changes at discrete loci. Third, recent genome-wide studies have started to demonstrate that these drugs recruit widespread reprogramming. Strikingly, most adaptations occur outside promoter regions, highlighting an important challenge toward their functional interpretation. Finally, studies of drug exposure during gestation or adolescence suggest long-lasting consequences, with the potential for early intervention.

neuroscience↗

The histone demethylase JMJ27 acts during the UV-induced modulation of H3K9me2 landscape and facilitates photodamage repair

Plants have evolved sophisticated DNA repair mechanisms to cope with the deleterious effects of UV-induced DNA damage. Indeed, DNA repair pathways cooperate with epigenetic-related processes to efficiently maintain genome integrity. However, it remains to be deciphered how photodamages are recognized within different chromatin landscapes, especially in compacted genomic regions such as constitutive heterochromatin. We combined cytogenetics and epigenomics to identify that UV-C irradiation induces modulation of the main epigenetic mark found in constitutive heterochromatin, H3K9me2. We demonstrated that the histone demethylase, Jumonji27 (JMJ27), is responsible for the UV-induced reduction of H3K9me2 content at chromocenters. In addition, we identified that JMJ27 forms a complex with the photodamage recognition factor, DNA Damage Binding protein 2 (DDB2), and that the fine tuning of H3K9me2 contents orchestrates DDB2 dynamics on chromatin in response to UV-C exposure. Hence, this study uncovers the existence of an interplay between photodamage repair and H3K9me2 homeostasis.

plant biology↗