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在神经元芯片模型中对三叉神经和躯体神经中的机械敏感 Piezo1 通道进行功能表征。

Functional Characterization of Mechanosensitive Piezo1 Channels in Trigeminal and Somatic Nerves in a Neuron-on-Chip Model.

机构信息

A. I. Virtanen Institute for Molecular Sciences, University of Eastern Finland, Neulaniementie 2, 70211 Kuopio, Finland.

Finnadvance, Aapistie 1, 90220 Oulu, Finland.

出版信息

Int J Mol Sci. 2022 Jan 25;23(3):1370. doi: 10.3390/ijms23031370.

Abstract

Mechanosensitive ion channels, Piezo1 and 2, are activated by pressure and involved in diverse physiological functions, including senses of touch and pain, proprioception and many more. Understanding their function is important for elucidating the mechanosensitive mechanisms of a range of human diseases. Recently, Piezo channels were suggested to be contributors to migraine pain generation. Migraine is typically characterized by allodynia and mechanical hyperalgesia associated with the activation and sensitization of trigeminal ganglion (TG) nerve fibers. Notably, migraine specific medicines are ineffective for other types of pain, suggesting a distinct underlying mechanism. To address, in a straightforward manner, the specificity of the mechanosensitivity of trigeminal vs. somatic nerves, we compared the activity of Piezo1 channels in mouse TG neurons vs. dorsal root ganglia (DRG) neurons. We assessed the functional expression of Piezo1 receptors using a conventional live calcium imaging setup equipped with a multibarrel application system and utilizing a microfluidic chip-based setup. Surprisingly, the TG neurons, despite higher expression of the gene, were less responsive to Piezo1 agonist Yoda1 than the DRG neurons. This difference was more prominent in the chip-based setup, suggesting that certain limitations of the conventional approach, such as turbulence, can be overcome by utilizing microfluidic devices with laminar solution flow.

摘要

机械敏感性离子通道 Piezo1 和 Piezo2 可被压力激活,参与多种生理功能,包括触觉和疼痛、本体感觉等。了解其功能对于阐明一系列人类疾病的机械敏感性机制非常重要。最近,Piezo 通道被认为是偏头痛疼痛产生的贡献者。偏头痛的特征通常是痛觉过敏和机械性痛觉过敏,与三叉神经节 (TG) 神经纤维的激活和敏化有关。值得注意的是,偏头痛专用药物对其他类型的疼痛无效,这表明存在不同的潜在机制。为了直接解决三叉神经与躯体神经机械敏感性的特异性问题,我们比较了 Piezo1 通道在小鼠 TG 神经元与背根神经节 (DRG) 神经元中的活性。我们使用配备多桶给药系统的传统活钙成像装置以及基于微流控芯片的装置来评估 Piezo1 受体的功能表达。令人惊讶的是,尽管 TG 神经元的基因表达水平更高,但对 Piezo1 激动剂 Yoda1 的反应却不如 DRG 神经元敏感。这种差异在基于芯片的装置中更为明显,这表明利用具有层流溶液流动的微流控装置可以克服传统方法的某些限制,例如湍流。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aabe/8835985/e89ec5679a6a/ijms-23-01370-g0A1.jpg

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