Author:
Mendez Emily F.,Grimm Sandra L.,Stertz Laura,Gorski Damian,Movva Sai V.,Najera Katherine,Moriel Karla,Meyer Thomas D.,Fries Gabriel R.,Coarfa Cristian,Walss-Bass Consuelo
Abstract
IntroductionHuman-derived induced pluripotent stem cell (iPSC) models of brain promise to advance our understanding of neurotoxic consequences of drug use. However, how well these models recapitulate the actual genomic landscape and cell function, as well as the drug-induced alterations, remains to be established. New in vitro models of drug exposure are needed to advance our understanding of how to protect or reverse molecular changes related to substance use disorders.MethodsWe engineered a novel induced pluripotent stem cell-derived model of neural progenitor cells and neurons from cultured postmortem human skin fibroblasts, and directly compared these to isogenic brain tissue from the donor source. We assessed the maturity of the cell models across differentiation from stem cells to neurons using RNA cell type and maturity deconvolution analyses as well as DNA methylation epigenetic clocks trained on adult and fetal human tissue. As proof-of-concept of this model’s utility for substance use disorder studies, we compared morphine- and cocaine-treated neurons to gene expression signatures in postmortem Opioid Use Disorder (OUD) and Cocaine Use Disorder (CUD) brains, respectively.ResultsWithin each human subject (N = 2, 2 clones each), brain frontal cortex epigenetic age parallels that of skin fibroblasts and closely approximates the donor’s chronological age; stem cell induction from fibroblast cells effectively sets the epigenetic clock to an embryonic age; and differentiation of stem cells to neural progenitor cells and then to neurons progressively matures the cells via DNA methylation and RNA gene expression readouts. In neurons derived from an individual who died of opioid overdose, morphine treatment induced alterations in gene expression similar to those previously observed in OUD ex-vivo brain tissue, including differential expression of the immediate early gene EGR1, which is known to be dysregulated by opioid use.DiscussionIn summary, we introduce an iPSC model generated from human postmortem fibroblasts that can be directly compared to corresponding isogenic brain tissue and can be used to model perturbagen exposure such as that seen in opioid use disorder. Future studies with this and other postmortem-derived brain cellular models, including cerebral organoids, can be an invaluable tool for understanding mechanisms of drug-induced brain alterations.
Subject
Psychiatry and Mental health
Reference67 articles.
1. Induction of pluripotent stem cells from adult human fibroblasts by defined factors;Takahashi;Cells,2007
2. Embryonic stem cell and induced pluripotent stem cell: an epigenetic perspective;Liang;Cell Res,2013
3. Transcriptomics analysis of iPSC-derived neurons and modeling of neuropsychiatric disorders;Lin;Mol Cell Neurosci,2016
4. Advances in reprogramming-based study of neurologic disorders;Nityanandam,2015
5. iPSC-based disease modeling and drug discovery in cardinal neurodegenerative disorders;Okano,2022
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献