Interplay between subthalamic nucleus and spinal cord controls parkinsonian nociceptive disorders.

IF 10.6 1区 医学 Q1 CLINICAL NEUROLOGY Brain Pub Date : 2025-01-07 DOI:10.1093/brain/awae200
Keri-Ann Charles, Elba Molpeceres Sierra, Rabia Bouali-Benazzouz, Houyam Tibar, Khalid Oudaha, Frédéric Naudet, Alexia Duveau, Pascal Fossat, Abdelhamid Benazzouz
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Abstract

Pain is a non-motor symptom that impairs quality of life in patients with Parkinson's disease. Pathological nociceptive hypersensitivity in patients could be due to changes in the processing of somatosensory information at the level of the basal ganglia, including the subthalamic nucleus (STN), but the underlying mechanisms are not yet defined. Here, we investigated the interaction between the STN and the dorsal horn of the spinal cord (DHSC), by first examining the nature of STN neurons that respond to peripheral nociceptive stimulation and the nature of their responses under normal and pathological conditions. Next, we studied the consequences of deep brain stimulation (DBS) of the STN on the electrical activity of DHSC neurons. Then, we investigated whether the therapeutic effect of STN-DBS would be mediated by the brainstem descending pathway involving the rostral ventromedial medulla. Finally, to better understand how the STN modulates allodynia, we used Designer Receptors Exclusively Activated by Designer Drugs (DREADDs) expressed in the STN. The study was carried out on the 6-OHDA rodent model of Parkinson's disease, obtained by stereotactic injection of the neurotoxin into the medial forebrain bundle of rats and mice. In these animals, we used motor and nociceptive behavioural tests, in vivo electrophysiology of STN and wide dynamic range (WDR) DHSC neurons in response to peripheral stimulation, deep brain stimulation of the STN and the selective DREADD approach. Vglut2-ires-cre mice were used to specifically target and inhibit STN glutamatergic neurons. STN neurons are able to detect nociceptive stimuli, encode their intensity and generate windup-like plasticity, like WDR neurons in the DHSC. These phenomena are impaired in dopamine-depleted animals, as the intensity response is altered in both spinal and subthalamic neurons. Furthermore, as with L-DOPA, STN-DBS in rats ameliorated 6-OHDA-induced allodynia, and this effect is mediated by descending brainstem projections leading to normalization of nociceptive integration in DHSC neurons. Furthermore, this therapeutic effect was reproduced by selective inhibition of STN glutamatergic neurons in Vglut2-ires-cre mice. Our study highlights the centrality of the STN in nociceptive circuits, its interaction with the DHSC and its key involvement in pain sensation in Parkinson's disease. Furthermore, our results provide for the first-time evidence that subthalamic DBS produces analgesia by normalizing the responses of spinal WDR neurons via descending brainstem pathways. These effects are due to direct inhibition, rather than activation of glutamatergic neurons in the STN or passage fibres, as shown in the DREADDs experiment.

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丘脑下核与脊髓之间的相互作用控制着帕金森痛觉失调。
背景:疼痛是影响帕金森病患者生活质量的一种非运动症状。帕金森病患者病理性痛觉过敏可能是由于包括丘脑下核(STN)在内的基底节水平的躯体感觉信息处理发生了变化,但其潜在机制尚未明确。在这里,我们研究了 STN 和脊髓背角(DHSC)之间的相互作用,首先研究了对外周痛觉刺激做出反应的 STN 神经元的性质,以及它们在正常和病理条件下的反应性质。接着,我们研究了 STN 深部脑刺激(DBS)对 DHSC 神经元电活动的影响。然后,我们研究了 STN-DBS 的治疗效果是否会通过涉及喙腹内侧延髓(RVM)的脑干下降通路介导。最后,为了更好地了解 STN 如何调节异感症,我们使用了 STN 中表达的 Designer Receptors Exclusively Activated by Designer Drugs (DREADDs):研究是在 6-OHDA 帕金森病啮齿动物模型上进行的,该模型是通过向大鼠和小鼠的前脑内侧束立体定向注射神经毒素获得的。在这些动物身上,我们使用了运动和痛觉行为测试、STN和宽动态范围(WDR)DHSC神经元对外周刺激的体内电生理学反应、STN的深部脑刺激和选择性DREADD方法。Vglut2-ires-cre 小鼠被用来特异性靶向和抑制 STN 谷氨酸能神经元:结果:STN神经元能够检测痛觉刺激,对刺激强度进行编码,并产生类似于DHSC中WDR神经元的可塑性。由于脊髓和丘脑下神经元的强度反应发生了改变,这些现象在多巴胺缺乏的动物中受到了损害。此外,与左旋多巴一样,STN-DBS 也能改善大鼠由 6-OHDA 引起的异动症,而这种效应是通过脑干下行投射导致 DHSC 神经元痛觉整合正常化而产生的。此外,在 Vglut2-ires-cre 小鼠中选择性抑制 STN 谷氨酸能神经元也能再现这种治疗效果:我们的研究强调了 STN 在痛觉回路中的中心地位、它与 DHSC 的相互作用以及它在帕金森病痛觉中的关键作用。此外,我们的研究结果首次证明,丘脑下 DBS 可通过脑干下降通路使脊髓 WDR 神经元的反应正常化,从而产生镇痛效果。这些效应是由于直接抑制,而不是激活 STN 或通道纤维中的谷氨酸能神经元,正如 DREADDs 实验所显示的那样。
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来源期刊
Brain
Brain 医学-临床神经学
CiteScore
20.30
自引率
4.10%
发文量
458
审稿时长
3-6 weeks
期刊介绍: Brain, a journal focused on clinical neurology and translational neuroscience, has been publishing landmark papers since 1878. The journal aims to expand its scope by including studies that shed light on disease mechanisms and conducting innovative clinical trials for brain disorders. With a wide range of topics covered, the Editorial Board represents the international readership and diverse coverage of the journal. Accepted articles are promptly posted online, typically within a few weeks of acceptance. As of 2022, Brain holds an impressive impact factor of 14.5, according to the Journal Citation Reports.
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