Institute of Virology, Hannover Medical School, Germany; Cluster of Excellence-Resolving Infection Susceptibility (RESIST), Hannover Medical School, Germany.
Department of Neurology, Hannover Medical School, Germany.
Stem Cell Res. 2021 Oct;56:102535. doi: 10.1016/j.scr.2021.102535. Epub 2021 Sep 11.
Somatosensory low threshold mechanoreceptors (LTMRs) sense innocuous mechanical forces, largely through specialized axon termini termed sensory nerve endings, where the mechanotransduction process initiates upon activation of mechanotransducers. In humans, a subset of sensory nerve endings is enlarged, forming bulb-like expansions, termed bulbous nerve endings. There is no in vitro human model to study these neuronal endings. Piezo2 is the main mechanotransducer found in LTMRs. Recent evidence shows that Piezo1, the other mechanotransducer considered absent in dorsal root ganglia (DRG), is expressed at low level in somatosensory neurons. We established a differentiation protocol to generate, from iPSC-derived neuronal precursor cells, human LTMR recapitulating bulbous sensory nerve endings and heterogeneous expression of Piezo1 and Piezo2. The derived neurons express LTMR-specific genes, convert mechanical stimuli into electrical signals and have specialized axon termini that morphologically resemble bulbous nerve endings. Piezo2 is concentrated within these enlarged axon termini. Some derived neurons express low level Piezo1, and a subset co-express both channels. Thus, we generated a unique, iPSCs-derived human model that can be used to investigate the physiology of bulbous sensory nerve endings, and the role of Piezo1 and 2 during mechanosensation.
躯体感觉低阈值机械感受器(LTMRs)感知无害的机械力,主要通过称为感觉神经末梢的专门轴突末端,在机械换能过程在机械换能器激活时启动。在人类中,一部分感觉神经末梢扩大,形成球状膨胀,称为球状神经末梢。目前还没有体外人类模型来研究这些神经元末梢。Piezo2 是 LTMRs 中主要的机械换能器。最近的证据表明,Piezo1 是另一种被认为不存在于背根神经节(DRG)中的机械换能器,在感觉神经元中低水平表达。我们建立了一种分化方案,从 iPSC 衍生的神经元前体细胞中生成再现球状感觉神经末梢和 Piezo1 和 Piezo2 异质性表达的人类 LTMR。衍生的神经元表达 LTMR 特异性基因,将机械刺激转化为电信号,并具有类似于球状神经末梢的特殊轴突末端。Piezo2 集中在这些扩大的轴突末端内。一些衍生神经元表达低水平的 Piezo1,一部分同时表达两种通道。因此,我们生成了一种独特的、由 iPSC 衍生的人类模型,可用于研究球状感觉神经末梢的生理学,以及 Piezo1 和 2 在机械感觉中的作用。