Anatomical mapping of whole-brain monosynaptic inputs to the orbitofrontal cortex.

IF 3.4 3区 医学 Q2 NEUROSCIENCES
Frontiers in Neural Circuits Pub Date : 2025-04-04 eCollection Date: 2025-01-01 DOI:10.3389/fncir.2025.1567036
Mei Yang, Hailing Yang, Lang Shen, Tonghui Xu
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引用次数: 0

Abstract

The orbitofrontal cortex (ORB) exhibits a complex structure and diverse functional roles, including emotion regulation, decision-making, and reward processing. Structurally, it comprises three distinct regions: the medial part (ORBm), the ventrolateral part (ORBvl), and the lateral part (ORBl), each with unique functional attributes, such as ORBm's involvement in reward processing, ORBvl's regulation of depression-like behavior, and ORBl's response to aversive stimuli. Dysregulation of the ORB has been implicated in various psychiatric disorders. However, the neurocircuitry underlying the functions and dysfunctions of the ORB remains poorly understood. This study employed recombinant adeno-associated viruses (rAAV) and rabies viruses with glycoprotein deletion (RV-ΔG) to retrogradely trace monosynaptic inputs to three ORB subregions in male C57BL/6J mice. Inputs were quantified across the whole brain using fluorescence imaging and statistical analysis. Results revealed distinct input patterns for each ORB subregion, with significant contributions from the isocortex and thalamus. The ORBm received prominent inputs from the prelimbic area, agranular insular area, and hippocampal field CA1, while the ORBvl received substantial intra-ORB inputs. The ORBl exhibited strong inputs from the somatomotor and somatosensory areas. Thalamic inputs, particularly from the mediodorsal nucleus and submedial nucleus of the thalamus, were widespread across all ORB subregions. These findings provide novel insights into the functional connectivity of ORB subregions and their roles in neural circuit mechanisms underlying behavior and psychiatric disorders.

全脑眶额皮质单突触输入的解剖图谱。
眶额皮质(ORB)具有复杂的结构和多种功能,包括情绪调节、决策和奖励处理。在结构上,它包括三个不同的区域:内侧部分(ORBm)、腹外侧部分(ORBvl)和外侧部分(ORBl),每个区域都有独特的功能属性,如ORBm参与奖励加工、ORBvl调节抑郁样行为和ORBvl对厌恶刺激的反应。ORB的失调与各种精神疾病有关。然而,ORB功能和功能障碍背后的神经回路仍然知之甚少。本研究采用重组腺相关病毒(rAAV)和带糖蛋白缺失的狂犬病毒(RV-ΔG)逆行追踪雄性C57BL/6J小鼠单突触输入到三个ORB亚区。使用荧光成像和统计分析对整个大脑的输入进行量化。结果显示,每个ORB亚区都有不同的输入模式,其中异皮质和丘脑有重要贡献。ORBm接收了来自边缘前区、颗粒岛区和海马区CA1的大量输入,而orbv接收了大量的orb内输入。ORBl表现出来自躯体运动区和躯体感觉区的强输入。丘脑的输入,特别是来自丘脑的中背核和下内侧核的输入,广泛分布于所有ORB亚区。这些发现为ORB亚区功能连通性及其在行为和精神疾病背后的神经回路机制中的作用提供了新的见解。
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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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