Hebda-Bauer Elaine K, Hagenauer Megan H, Munro Daniel B, Blandino Peter, Meng Fan, Arakawa Keiko, Stead John D H, Chitre Apurva S, Ozel A Bilge, Mohammadi Pejman, Watson Stanley J, Flagel Shelly B, Li Jun, Palmer Abraham A, Akil Huda
Michigan Neuroscience Institute, University of Michigan, Ann Arbor, MI, United States.
Department of Psychiatry, University of California San Diego, La Jolla, CA, United States.
Front Mol Neurosci. 2025 Mar 4;18:1469467. doi: 10.3389/fnmol.2025.1469467. eCollection 2025.
Externalizing and internalizing behavioral tendencies underlie many psychiatric and substance use disorders. These tendencies are associated with differences in temperament that emerge early in development via the interplay of genetic and environmental factors. To better understand the neurobiology of temperament, we have selectively bred rats for generations to produce two lines with highly divergent behavior: bred Low Responders (bLRs) are highly inhibited and anxious in novel environments, whereas bred High Responders (bHRs) are highly exploratory, sensation-seeking, and prone to drug-seeking behavior. Recently, we delineated these heritable differences by intercrossing bHRs and bLRs (F-F-F) to produce a heterogeneous F sample with well-characterized lineage and behavior (exploratory locomotion, anxiety-like behavior, Pavlovian conditioning). The identified genetic loci encompassed variants that could influence behavior via many mechanisms, including proximal effects on gene expression. Here we measured gene expression in male and female Fs ( = 12 bHRs, 12 bLRs) and in a large sample of heterogeneous Fs ( = 250) using hippocampal RNA-Seq. This enabled triangulation of behavior with both genetic and functional genomic data to implicate specific genes and biological pathways. Our results show that bHR/bLR differential gene expression is robust, surpassing sex differences in expression, and predicts expression associated with F behavior. In F and F samples, gene sets related to growth/proliferation are upregulated with bHR-like behavior, whereas gene sets related to mitochondrial function, oxidative stress, and microglial activation are upregulated with bLR-like behavior. Integrating our F RNA-Seq data with previously-collected whole genome sequencing data identified genes with hippocampal expression correlated with proximal genetic variation (-expression quantitative trait loci or -eQTLs). These -eQTLs successfully predict bHR/bLR differential gene expression based on F genotype. Sixteen of these genes are associated with -eQTLs colocalized within loci we previously linked to behavior and are strong candidates for mediating the influence of genetic variation on behavioral temperament. Eight of these genes are related to bioenergetics. Convergence between our study and others targeting similar behavioral traits revealed five more genes consistently related to temperament. Overall, our results implicate hippocampal bioenergetic regulation of oxidative stress, microglial activation, and growth-related processes in shaping behavioral temperament, thereby modulating vulnerability to psychiatric and addictive disorders.
外化和内化行为倾向是许多精神疾病和物质使用障碍的基础。这些倾向与气质差异相关,气质差异通过遗传和环境因素的相互作用在发育早期出现。为了更好地理解气质的神经生物学,我们对大鼠进行了多代选择性培育,以产生两种行为高度不同的品系:培育低反应者(bLRs)在新环境中高度抑制且焦虑,而培育高反应者(bHRs)则高度探索、寻求刺激且易出现觅药行为。最近,我们通过将bHRs和bLRs杂交(F1-F2-F3)来描绘这些可遗传差异,以产生一个具有明确谱系和行为(探索性运动、焦虑样行为、巴甫洛夫条件反射)的异质F3样本。所确定的基因座包含了可通过多种机制影响行为的变异,包括对基因表达的近端效应。在这里,我们使用海马RNA测序测量了雄性和雌性F3大鼠(n = 12只bHRs,12只bLRs)以及大量异质F3样本(n = 250)中的基因表达。这使得能够将行为与遗传和功能基因组数据进行三角测量,以确定特定基因和生物学途径。我们的结果表明,bHR/bLR差异基因表达很强劲,超过了表达中的性别差异,并预测了与F3行为相关的表达。在F2和F3样本中,与生长/增殖相关的基因集在具有bHR样行为时上调,而与线粒体功能、氧化应激和小胶质细胞激活相关的基因集在具有bLR样行为时上调。将我们的F3 RNA测序数据与先前收集的全基因组测序数据相结合,确定了海马表达与近端遗传变异(表达数量性状位点或eQTLs)相关的基因。这些eQTLs基于F3基因型成功预测了bHR/bLR差异基因表达。其中16个基因与在我们先前与行为相关的基因座内共定位的eQTLs相关,是介导遗传变异对行为气质影响的有力候选基因。其中8个基因与生物能量学有关。我们的研究与其他针对类似行为特征的研究之间的趋同揭示了另外5个与气质一致相关的基因。总体而言,我们的结果表明海马对氧化应激、小胶质细胞激活和生长相关过程的生物能量调节在塑造行为气质中起作用,从而调节对精神疾病和成瘾性障碍的易感性。
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