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SH2B1调节海马体ERK信号传导以影响人类和小鼠的流体智力。

SH2B1 Tunes Hippocampal ERK Signaling to Influence Fluid Intelligence in Humans and Mice.

作者信息

Du Xiujuan, Yan Yuhua, Yu Juehua, Zhu Tailin, Huang Chu-Chung, Zhang Lingli, Shan Xingyue, Li Ren, Dai Yuan, Lv Hui, Zhang Xiao-Yong, Feng Jianfeng, Li Wei-Guang, Luo Qiang, Li Fei

机构信息

Developmental and Behavioral Pediatric Department, Brain and Behavioral Research Unit of Shanghai Institute for Pediatric Research and Ministry of Education-Shanghai Key Laboratory for Children's Environmental Health, Xinhua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai 200092, China.

Developmental and Behavioral Pediatric Department, Shanghai Xinhua Children's Hospital, Shanghai 200092, China.

出版信息

Research (Wash D C). 2023 Nov 14;6:0269. doi: 10.34133/research.0269. eCollection 2023.

Abstract

Fluid intelligence is a cognitive domain that encompasses general reasoning, pattern recognition, and problem-solving abilities independent of task-specific experience. Understanding its genetic and neural underpinnings is critical yet challenging for predicting human development, lifelong health, and well-being. One approach to address this challenge is to map the network of correlations between intelligence and other constructs. In the current study, we performed a genome-wide association study using fluid intelligence quotient scores from the UK Biobank to explore the genetic architecture of the associations between obesity risk and fluid intelligence. Our results revealed novel common genetic loci (, , , and ) underlying the association between fluid intelligence and body metabolism. Surprisingly, we demonstrated that variation influenced fluid intelligence independently of its effects on metabolism but partially mediated its association with bilateral hippocampal volume. Consistently, selective genetic ablation of in the mouse hippocampus, particularly in inhibitory neurons, but not in excitatory neurons, significantly impaired working memory, short-term novel object recognition memory, and behavioral flexibility, but not spatial learning and memory, mirroring the human intellectual performance. Single-cell genetic profiling of Sh2B1-regulated molecular pathways revealed that deletion resulted in aberrantly enhanced extracellular signal-regulated kinase (ERK) signaling, whereas pharmacological inhibition of ERK signaling reversed the associated behavioral impairment. Our cross-species study thus provides unprecedented insight into the role of in fluid intelligence and has implications for understanding the genetic and neural underpinnings of lifelong mental health and well-being.

摘要

流体智力是一个认知领域,它包括一般推理、模式识别和解决问题的能力,这些能力独立于特定任务的经验。了解其遗传和神经基础对于预测人类发展、终身健康和幸福至关重要,但也具有挑战性。应对这一挑战的一种方法是绘制智力与其他结构之间的关联网络。在当前的研究中,我们使用来自英国生物银行的流体智商量表分数进行了全基因组关联研究,以探索肥胖风险与流体智力之间关联的遗传结构。我们的结果揭示了流体智力与身体代谢之间关联的新的常见基因位点(、、和)。令人惊讶的是,我们证明变异独立于其对代谢的影响而影响流体智力,但部分介导了其与双侧海马体积的关联。一致地,在小鼠海马体中选择性基因敲除,特别是在抑制性神经元中,而不是在兴奋性神经元中,显著损害工作记忆、短期新物体识别记忆和行为灵活性,但不影响空间学习和记忆,这与人类智力表现相似。对Sh2B1调节的分子途径进行单细胞基因分析表明,缺失导致细胞外信号调节激酶(ERK)信号异常增强,而ERK信号的药物抑制逆转了相关的行为损伤。因此,我们的跨物种研究为Sh2B1在流体智力中的作用提供了前所未有的见解,并对理解终身心理健康和幸福的遗传和神经基础具有启示意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6718/10907025/85632349158e/research.0269.fig.001.jpg

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