ArticlePNAS nexus2023
Ribosomal dysregulation: A conserved pathophysiological mechanism in human depression and mouse chronic stress.
Article in PNAS nexus, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed.
- Peripheral transcriptomic aging acceleration in major depressive disorder: the mediating role of insular cortex alterations.Psychological medicine · 2026Article
- Neuronal subtype-specific ribosomal protein mRNA expression.RNA (New York, N.Y.) · 2026Article
- Continuous Alterations in the Gut Microbial Landscape Associated With Suicidal Ideation in First-Episode Drug-naïve Major Depressive Disorder.CNS neuroscience & therapeutics · 2026Article
- Identification and validation of palmitoylation-associated biomarkers in major depressive disorder.Scientific reports · 2026Article
- Molecular Characterization of the Progressive Landscape of Depression.bioRxiv : the preprint server for biology · 2026Article
- microRNA-17-5p modulates ventral hippocampal transcriptome and synaptic proteome: Implications for emotional regulation in adult male rats.Neurobiology of disease · 2026Article
- Integration of transcriptome profiling to identify key genes involved in the interplay between oxidative stress and mitophagy in major depressive disorder, followed by multidimensional phenotypic validation.Frontiers in psychiatry · 2026Article
- Differentially expressed transcripts associated with depressive symptoms during pregnancy and postpartum.Molecular psychiatry · 2025Article
- Analysis of Genomic and Transcriptomic Data Revealed Key Genes and Processes in the Development of Major Depressive Disorder.International journal of molecular sciences · 2025Article
- Human hair as a diagnostic tool in medicine.Biochemistry and biophysics reports · 2025Review
- Transcriptome signatures of the medial prefrontal cortex underlying GABAergic control of resilience to chronic stress exposure.Molecular psychiatry · 2025Article
- Integrated Profiling Identifies Long-Term Molecular Consequences of Prenatal Dexamethasone Treatment in the Rat Brain-Potential Triggers of Depressive Phenotype and Cognitive Impairment.Molecular neurobiology · 2025Article
- The identification and validation of histone acetylation-related biomarkers in depression disorder based on bioinformatics and machine learning approaches.Frontiers in neuroscience · 2025Article
- Article
- Decoding the molecular script of 2'-O-ribomethylation: Implications across CNS disorders.Heliyon · 2024Review
- The Ribosome Hypothesis: Decoding Mood Disorder Complexity.International journal of molecular sciences · 2024Article
Corrections and comments
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Authors and funding
12 authors.
Funding
Abstract
The underlying biological mechanisms that contribute to the heterogeneity of major depressive disorder (MDD) presentation remain poorly understood, highlighting the need for a conceptual framework that can explain this variability and bridge the gap between animal models and clinical endpoints. Here, we hypothesize that comparative analysis of molecular data from different experimental systems of chronic stress, and MDD has the potential to provide insight into these mechanisms and address this gap. Thus, we compared transcriptomic profiles of brain tissue from postmortem MDD subjects and from mice exposed to chronic variable stress (CVS) to identify orthologous genes. Ribosomal protein genes (RPGs) were down-regulated, and associated ribosomal protein (RP) pseudogenes were up-regulated in both conditions. A seeded gene co-expression analysis using altered RPGs common between the MDD and CVS groups revealed that down-regulated RPGs homeostatically regulated the synaptic changes in both groups through a RP-pseudogene-driven mechanism. In vitro analysis demonstrated that the RPG dysregulation was a glucocorticoid-driven endocrine response to stress. In silico analysis further demonstrated that the dysregulation was reversed during remission from MDD and selectively responded to ketamine but not to imipramine. This study provides the first evidence that ribosomal dysregulation during stress is a conserved phenotype in human MDD and chronic stress-exposed mouse. Our results establish a foundation for the hypothesis that stress-induced alterations in RPGs and, consequently, ribosomes contribute to the synaptic dysregulation underlying MDD and chronic stress-related mood disorders. We discuss the role of ribosomal heterogeneity in the variable presentations of depression and other mood disorders.
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