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本文引用的文献

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Molecular ontology of the parabrachial nucleus.臂旁核的分子本体论。
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Characterisation of lamina I anterolateral system neurons that express Cre in a Phox2a-Cre mouse line.在 Phox2a-Cre 小鼠品系中,表达 Cre 的 I 层前外侧系统神经元的特征。
Sci Rep. 2021 Sep 9;11(1):17912. doi: 10.1038/s41598-021-97105-w.
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Netrin1 and reelin signaling are required for the migration of anterolateral system neurons in the embryonic spinal cord.Netrin1 和 reelin 信号对于胚胎脊髓中前外侧系统神经元的迁移是必需的。
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Pain and itch processing by subpopulations of molecularly diverse spinal and trigeminal projection neurons.不同分子亚型的脊髓和三叉神经投射神经元亚群对疼痛和痒觉的处理。
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Phox2a Defines a Developmental Origin of the Anterolateral System in Mice and Humans.Phox2a 定义了小鼠和人类前外侧系统的发育起源。
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Netrin-1 receptor DCC is required for the contralateral topography of lamina I anterolateral system neurons.Netrin-1 受体 DCC 对于 lamina I 前外侧系统神经元的对侧拓扑结构是必需的。
Pain. 2021 Jan;162(1):161-175. doi: 10.1097/j.pain.0000000000002012.
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The role of the diencephalon in the guidance of thalamocortical axons in mice.间脑在指导小鼠丘脑皮质轴突中的作用。
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Parabrachial Complex: A Hub for Pain and Aversion.臂旁复合体:疼痛和厌恶的中枢。
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Commissural axon guidance in the developing spinal cord: from Cajal to the present day.发育中脊髓的连合轴突导向:从 Cajal 到今天。
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Phox2a 神经元缺失导致的结肠癌表达缺失对小鼠体感丘脑神经支配的躯体定位和伤害性刺激的定位的影响

Somatotopy of Mouse Spinothalamic Innervation and the Localization of a Noxious Stimulus Requires Deleted in Colorectal Carcinoma Expression by Phox2a Neurons.

机构信息

Institut de Recherches Cliniques de Montréal, Montréal Québec H2W 1R7, Canada.

Integrated Program in Neuroscience, McGill University, Montréal Québec H3A 2B4, Canada.

出版信息

J Neurosci. 2022 Oct 19;42(42):7885-7899. doi: 10.1523/JNEUROSCI.1164-22.2022. Epub 2022 Aug 26.

DOI:10.1523/JNEUROSCI.1164-22.2022
PMID:36028316
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9617615/
Abstract

Anterolateral system (AS) neurons transmit pain signals from the spinal cord to the brain. Their morphology, anatomy, and physiological properties have been extensively characterized and suggest that specific AS neurons and their brain targets are concerned with the discriminatory aspects of noxious stimuli, such as their location or intensity, and their motivational/emotive dimension. Among the recently unraveled molecular markers of AS neurons is the developmentally expressed transcription factor Phox2a, providing us with the opportunity to selectively disrupt the embryonic wiring of AS neurons to gain insights into the logic of their adult function. As mice with a spinal-cord-specific loss of the netrin-1 receptor deleted in colorectal carcinoma (DCC) have increased AS neuron innervation of ipsilateral brain targets and defective noxious stimulus localization or topognosis, we generated mice of either sex carrying a deletion of in Phox2a neurons. Such mice displayed impaired topognosis along the rostrocaudal axis but with little effect on left-right discrimination and normal aversive responses. Anatomical tracing experiments in mice revealed defective targeting of cervical and lumbar AS axons within the thalamus. Furthermore, genetic labeling of AS axons revealed their expression of DCC on their arrival in the brain, at a time when many of their target neurons are being born and express Our experiments suggest a postcommissural crossing function for netrin-1:DCC signaling during the formation of somatotopically ordered maps and are consistent with a discriminatory function of some of the Phox2a AS neurons. How nociceptive (pain) signals are relayed from the body to the brain remains an important question relevant to our understanding of the basic physiology of pain perception. Previous studies have demonstrated that the AS is a main effector of this function. It is composed of AS neurons located in the spinal cord that receive signals from nociceptive sensory neurons that detect noxious stimuli. In this study, we generate a genetic miswiring of mouse AS neurons that results in a decreased ability to perceive the location of a painful stimulus. The precise nature of this defect sheds light on the function of different kinds of AS neurons and how pain information may be organized.

摘要

前外侧系统 (AS) 神经元将脊髓中的疼痛信号传递到大脑。它们的形态、解剖和生理特性已经得到了广泛的描述,表明特定的 AS 神经元及其大脑靶标与有害刺激的辨别方面有关,例如其位置或强度及其动机/情感维度。在最近发现的 AS 神经元的分子标记物中,有发育表达的转录因子 Phox2a,这为我们提供了选择性破坏 AS 神经元的胚胎连接的机会,以深入了解其成年功能的逻辑。由于具有脊髓特异性缺失的 netrin-1 受体缺失的结肠癌 (DCC) 的小鼠增加了 AS 神经元对同侧大脑靶标的神经支配,并出现有害刺激定位或定位缺陷,因此我们生成了携带 Phox2a 神经元缺失的雌雄小鼠。这些 小鼠表现出沿头尾轴的定位障碍,但对左右辨别力几乎没有影响,并且对厌恶反应正常。在 小鼠中的解剖追踪实验显示,AS 轴突在丘脑内的颈椎和腰椎靶向缺陷。此外,AS 轴突的遗传标记显示它们在到达大脑时表达 DCC,此时许多其靶神经元正在产生并表达 我们的实验表明,在形成躯体排列有序的图谱过程中,netrin-1:DCC 信号具有后连合交叉功能,并且与某些 Phox2a AS 神经元的辨别功能一致。伤害性(疼痛)信号如何从身体传递到大脑仍然是一个重要的问题,这与我们对疼痛感知基本生理学的理解有关。先前的研究表明,AS 是此功能的主要效应器。它由位于脊髓中的 AS 神经元组成,这些神经元接收来自检测有害刺激的伤害性感觉神经元的信号。在这项研究中,我们对小鼠 AS 神经元进行了遗传错连,导致感知疼痛刺激位置的能力下降。这种缺陷的精确性质阐明了不同类型的 AS 神经元的功能以及如何组织疼痛信息。