
@article{ref1,
title="PTSD, major depression, and advanced transcriptomic age in brain tissue",
journal="Depression and anxiety",
year="2022",
author="Zhao, Xiang and Logue, Mark W. and Hawn, Sage E. and Neale, Zoe E. and Zhou, Zhenwei and Huber, Bertrand R. and Miller, Mark W. and Wolf, Erika J.",
volume="ePub",
number="ePub",
pages="ePub-ePub",
abstract="BACKGROUND: Psychiatric disorders have been associated with advanced epigenetic age in DNA methylation, yet this relationship has not been studied in the brain transcriptome. We examined transcriptomic age using an RNA-based algorithm recently developed by Ren and Kuan (&quot;RNAAgeCalc&quot;) and the associations between posttraumatic stress disorder (PTSD), major depressive disorder (MDD), and alcohol use disorder with age-adjusted RNA age (&quot;RNA age residuals&quot;) in three brain regions: dorsolateral prefrontal cortex, ventromedial prefrontal cortex (vmPFC), and motor cortex. <br><br>METHODS: RNA sequencing was used to measure gene expression in postmortem brain tissue from the VA National PTSD Brain Bank (n = 94; 59% male). <br><br>RESULTS: Linear models revealed that diagnoses of PTSD and/or MDD were positively associated with RNA age residuals in vmPFC only (p-adj = 0.012). Three genes in the RNAAgeCalc algorithm (KCNJ16, HYAL2, and CEBPB) were also differentially expressed in association with PTSD/MDD in vmPFC (p-adj = 6.45E-05 to 0.02). Enrichment analysis revealed that inflammatory and immune-related pathways were overrepresented (p-adj < 0.05) among the 43 genes in RNAAgeCalc that were also at least nominally associated with PTSD/MDD in vmPFC relative to the 448 RNAAgeCalc genes. Endothelial and mural cells were negatively associated with RNA age residuals in vmPFC (both p-adj = 0.028) and with PTSD/MDD (both p-adj = 0.017). <br><br>CONCLUSIONS: Results highlight the importance of inflammation and immune system dysregulation in the link between psychopathology and accelerated cellular aging and raise the possibility that blood-brain barrier degradation may play an important role in stress-related accelerated brain aging.<p /> <p>Language: en</p>",
language="en",
issn="1091-4269",
doi="10.1002/da.23289",
url="http://dx.doi.org/10.1002/da.23289"
}