Aug 2026· Nature Medicine· 2 citations· 71 references
Medicine
TL;DR
A neurogenic lineage in the adult human hippocampal subgranular zone is identified and evidence for a stalled neurogenic process in MDD is provided, associated with transcriptional regulation, stress-related reprogramming and interferon signaling across developmental stages.
Abstract
Major depressive disorder (MDD) is associated with reduced hippocampal volume, altered connectivity and negative memory bias, suggesting disrupted hippocampal plasticity. Dysregulated adult hippocampal neurogenesis is a potential contributor, but its relevance in humans and role in MDD remain unclear. Here we investigated the molecular basis of hippocampal dysfunction in nonmedicated individuals with MDD by integrating analyses of neurogenic trajectories, cell-type- and subfield-specific gene expression, chromatin accessibility and protein expression. We identify a neurogenic lineage in the adult human hippocampal subgranular zone and provide evidence for a stalled neurogenic process in MDD, associated with transcriptional regulation, stress-related reprogramming and interferon signaling across developmental stages. Excitatory and inhibitory neurons show dysregulation of transcription factor networks affecting cell states. Cellular stress, excitatory-inhibitory imbalance, impaired synaptic plasticity, reduced metabolic capacity and immune activation, underlie impaired neurogenesis and reduced hippocampus circuit plasticity. Findings indicate genetic and epigenetic regulation of gene expression in MDD, and overlapping pathogenetic mechanisms with autoimmune, neurodevelopmental and neurodegenerative diseases. This work provides a new understanding of the pathogenesis of hippocampus-dependent cognitive symptoms in MDD and suggests potential therapeutic targets.
Proteomics and transcriptomics convergent dysregulations in MDD, point to lipid metabolism, neurogenesis, synaptogenesis, cell adhesion, cell adhesion, and plasticity.
Madeline B. Mariani, Anthony D. Ramnauth, Xiao Yang et al.· 0 citations
These findings connect MDD polygenic risk to motor-cortical inhibitory-neuron biology and experimentally tractable circuit mechanisms and provide scDepBrain as a resource for exploring MDD-associated cellular programs across the brain.
Y. Ma, H. Han, C. Chen et al.· medRxiv· 0 citations
It is demonstrated that Ddit4 overexpression specifically in neurons is sufficient to reduce spine density in the PFC, impair temporal order memory, and induce transcriptional changes associated with stress and depression.
Alexander M. Kuhn, Kelly E. Bosis, Madeline M. Mairose et al.· eNeuro· 0 citations
This review aims to establish an integrated framework for understanding MDD epigenetics and accelerating the development of precision diagnostic and therapeutic approaches, including small-molecule inhibitors, RNA-based modulators, and brain-targeted delivery systems.
Jia-Yu Li, Xuchu Guan, Rui-Gang Zhang et al.· Journal of Translational Med...· 0 citations
This work reports for the first time that the atypical BCL2 protein BCL2L13 controls caspase-3 activity and cytochrome C release in neural stem/progenitor cells and identifies BCL2L13 as a novel target of the cooperative action of microRNA-124 and microRNA-137, both upregulated in the dentate gyrus shortly after kainic...