社会隔离期间自闭症啮齿动物模型的功能连接体中断。

IF 3 3区 医学 Q2 NEUROSCIENCES
Frontiers in Neural Circuits Pub Date : 2025-05-14 eCollection Date: 2025-01-01 DOI:10.3389/fncir.2025.1525130
Robert Gergely Kemecsei, Szizel Dániel-Papp, David Barnabas Balazs, Estifanos Ghebrihiwet Tewelde, Andras Csillag, Gergely Zachar
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引用次数: 0

摘要

自闭症谱系障碍(ASD)与社会行为及其背后的神经回路紊乱有关。关于隔离期间缺乏与同类人团聚动机的机制的数据很少。研究减少结束社会孤立动机的神经变化,与研究对社会刺激的潜在反应一样重要。研究人员利用产前丙戊酸(VPA)暴露的啮齿动物模型,研究了社会隔离如何影响参与社会加工和应激调节的关键脑核的神经激活。幼年雄性C57BL/6小鼠在出生前接受VPA或生理盐水(CTR)处理,并与笼内同伴进行24 h的社会隔离,通过c-Fos免疫组织化学评估神经活动。基于相关激活,我们重建并分析了观察到的脑区功能连接体。与vpa处理的动物相比,对照动物在中边缘奖励系统(MRS)、社会脑网络(SBN)和压力相关网络中心区域的c-Fos表达升高,其中以脚间核(IPN)为核心。功能网络分析显示,在vpa处理的动物中,连接模式更为普遍,但特异性较低。这些发现表明,产前VPA暴露会破坏与社会行为和压力调节相关的某些神经回路,为ASD模型中社会隔离感知的改变提供了见解,并突出了潜在的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Disrupted functional connectome in a rodent model of autism during social isolation.

Autism spectrum disorder (ASD) is associated with disruptions in social behavior and the neural circuitry behind it. Very little data is available on the mechanisms that are responsible for the lack of motivation to reunite with conspecifics during isolation. It is as important to investigate the neural changes that reduce motivation to end social isolation, as those underlying the reactions to social stimuli. Using a rodent model of prenatal valproic acid (VPA) exposure, we investigated how social isolation affects the neural activation of key brain nuclei involved in social processing and stress regulation. Juvenile male C57BL/6 mice were treated prenatally with VPA or saline (CTR) and subjected to 24 h of social isolation from their cage mates, with neural activity assessed via c-Fos immunohistochemistry. Based on correlational activations we reconstructed and analyzed the functional connectome of the observed brain regions. Control animals exhibited elevated c-Fos expression in the regions central to the mesolimbic reward system (MRS), social brain network (SBN), and stress-related networks, with the interpeduncular nucleus (IPN) at the core, compared to VPA-treated animals. Functional network analysis revealed a more widespread but less specific pattern of connectivity in VPA-treated animals. These findings suggest that prenatal VPA exposure disrupts certain neural circuits related to social behavior and stress regulation, offering an insight into the altered perception of social isolation in ASD models, and highlighting potential therapeutic targets.

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来源期刊
CiteScore
6.00
自引率
5.70%
发文量
135
审稿时长
4-8 weeks
期刊介绍: Frontiers in Neural Circuits publishes rigorously peer-reviewed research on the emergent properties of neural circuits - the elementary modules of the brain. Specialty Chief Editors Takao K. Hensch and Edward Ruthazer at Harvard University and McGill University respectively, are supported by an outstanding Editorial Board of international experts. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics and the public worldwide. Frontiers in Neural Circuits launched in 2011 with great success and remains a "central watering hole" for research in neural circuits, serving the community worldwide to share data, ideas and inspiration. Articles revealing the anatomy, physiology, development or function of any neural circuitry in any species (from sponges to humans) are welcome. Our common thread seeks the computational strategies used by different circuits to link their structure with function (perceptual, motor, or internal), the general rules by which they operate, and how their particular designs lead to the emergence of complex properties and behaviors. Submissions focused on synaptic, cellular and connectivity principles in neural microcircuits using multidisciplinary approaches, especially newer molecular, developmental and genetic tools, are encouraged. Studies with an evolutionary perspective to better understand how circuit design and capabilities evolved to produce progressively more complex properties and behaviors are especially welcome. The journal is further interested in research revealing how plasticity shapes the structural and functional architecture of neural circuits.
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