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Morphological, biophysical and synaptic properties of glutamatergic neurons of the mouse spinal dorsal horn

机译:小鼠脊髓背角谷氨酸能神经元的形态,生物物理和突触特性

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摘要

Interneurons of the spinal dorsal horn are central to somatosensory and nociceptive processing. A mechanistic understanding of their function depends on profound knowledge of their intrinsic properties and their integration into dorsal horn circuits. Here, we have used BAC transgenic mice expressing enhanced green fluorescent protein (eGFP) under the control of the vesicular glutamate transporter (vGluT2) gene (vGluT2::eGFP mice) to perform a detailed electrophysiological and morphological characterisation of excitatory dorsal horn neurons, and to compare their properties to those of GABAergic (Gad67::eGFP tagged) and glycinergic (GlyT2::eGFP tagged) neurons. vGluT2::eGFP was detected in about one-third of all excitatory dorsal horn neurons and, as demonstrated by the co-expression of vGluT2::eGFP with different markers of subtypes of glutamatergic neurons, probably labelled a representative fraction of these neurons. Three types of dendritic tree morphologies (vertical, central, and radial), but no islet cell-type morphology, were identified in vGluT2::eGFP neurons. vGluT2::eGFP neurons had more depolarised action potential thresholds and longer action potential durations than inhibitory neurons, while no significant differences were found for the resting membrane potential, input resistance, cell capacitance and after-hyperpolarisation. Delayed firing and single action potential firing were the single most prevalent firing patterns in vGluT2::eGFP neurons of the superficial and deep dorsal horn, respectively. By contrast, tonic firing prevailed in inhibitory interneurons of the dorsal horn. Capsaicin-induced synaptic inputs were detected in about half of the excitatory and inhibitory neurons, and occurred more frequently in superficial than in deep dorsal horn neurons. Primary afferent-evoked (polysynaptic) inhibitory inputs were found in the majority of glutamatergic and glycinergic neurons, but only in less than half of the GABAergic population. Excitatory dorsal horn neurons thus differ from their inhibitory counterparts in several biophysical properties and possibly also in their integration into the local neuronal circuitry.
机译:脊髓背角的中间神经元是体感和伤害感受过程的中心。对它们的功能的机械理解取决于对它们的内在特性及其将其整合到背角电路中的深刻了解。在这里,我们已使用BAC转基因小鼠在囊泡谷氨酸转运蛋白(vGluT2)基因(vGluT2 :: eGFP小鼠)的控制下表达增强的绿色荧光蛋白(eGFP),以对兴奋性背角神经元进行详细的电生理和形态学表征,并将其性质与GABA能的(Gad67 :: eGFP标记)和甘氨酸的(GlyT2 :: eGFP标记)神经元进行比较。 vGluT2 :: eGFP在所有兴奋性背角神经元的约三分之一中被检测到,并且通过vGluT2 :: eGFP与谷氨酸能神经元亚型的不同标记物的共表达证明,可能标记了这些神经元的代表性部分。在vGluT2 :: eGFP神经元中鉴定出三种类型的树突树形态(垂直,中心和放射状),但没有胰岛细胞类型的形态。与抑制性神经元相比,vGluT2 :: eGFP神经元具有更多的去极化动作电位阈值和更长的动作电位持续时间,而静息膜电位,输入电阻,细胞电容和超极化后无明显差异。延迟放电和单动作电位放电分别是浅表背角和深背角vGluT2 :: eGFP神经元中最普遍的单个触发模式。相反,在背角的抑制性中间神经中,强直性放电占主导。辣椒素诱导的突触输入在大约一半的兴奋性和抑制性神经元中被检测到,并且在浅表层中的发生比在深背角神经元中更为频繁。在大多数谷氨酸能和甘氨酸能神经元中发现了初级传入诱发(多突触)抑制输入,但仅在不到一半的GABA能神经元中。因此,兴奋性背角神经元在几种生物物理特性上可能与抑制性对角神经元不同,并且可能还与它们整合到局部神经元回路中不同。

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