Assessing the impact of pain-linked Nav1.7 variants: An example of two variants with no biophysical effect.

Kim Le Cann, Jannis E Meents, Vishal Sudha Bhagavath Eswaran, Maike F Dohrn, Raya Bott, Andrea Maier, Martin Bialer, Petra Hautvast, Andelain Erickson, Roman Rolke, Markus Rothermel, Jannis Körner, Ingo Kurth, Angelika Lampert
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Abstract

Mutations in the voltage-gated sodium channel Nav1.7 are linked to human pain. The Nav1.7/N1245S variant was described before in several patients suffering from primary erythromelalgia and/or olfactory hypersensitivity. We have identified this variant in a pain patient and a patient suffering from severe and life-threatening orthostatic hypotension. In addition, we report a female patient suffering from muscle pain and carrying the Nav1.7/E1139K variant. We tested both Nav1.7 variants by whole-cell voltage-clamp recordings in HEK293 cells, revealing a slightly enhanced current density for the N1245S variant when co-expressed with the β1 subunit. This effect was counteracted by an enhanced slow inactivation. Both variants showed similar voltage dependence of activation and steady-state fast inactivation, as well as kinetics of fast inactivation, deactivation, and use-dependency compared to WT Nav1.7. Finally, homology modeling revealed that the N1245S substitution results in different intramolecular interaction partners. Taken together, these experiments do not point to a clear pathogenic effect of either the N1245S or E1139K variant and suggest they may not be solely responsible for the patients' pain symptoms. As discussed previously for other variants, investigations in heterologous expression systems may not sufficiently mimic the pathophysiological situation in pain patients, and single nucleotide variants in other genes or modulatory proteins are necessary for these specific variants to show their effect. Our findings stress that biophysical investigations of ion channel mutations need to be evaluated with care and should preferably be supplemented with studies investigating the mutations in their context, ideally in human sensory neurons.

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评估与疼痛相关的 Nav1.7 变异的影响:以两个无生物物理效应的变体为例。
电压门控钠通道 Nav1.7 的突变与人类疼痛有关。Nav1.7/N1245S 变体曾在几名原发性红斑性肢痛症和/或嗅觉过敏症患者身上出现过。我们在一名疼痛患者和一名患有严重且危及生命的正张性低血压的患者身上发现了这种变异。此外,我们还报告了一名患有肌肉疼痛并携带 Nav1.7/E1139K 变体的女性患者。我们在 HEK293 细胞中通过全细胞电压钳记录测试了这两种 Nav1.7 变体,结果发现当 N1245S 变体与 β1 亚基共同表达时,其电流密度略有增强。这种效应被增强的缓慢失活所抵消。与 WT Nav1.7 相比,两种变体都显示出相似的激活电压依赖性和稳态快速失活,以及快速失活、失活和使用依赖性动力学。最后,同源建模显示,N1245S 的取代导致了不同的分子内相互作用伙伴。综上所述,这些实验并没有指出 N1245S 或 E1139K 变体有明显的致病作用,并表明它们可能不是患者疼痛症状的唯一原因。正如之前针对其他变异体所讨论的那样,在异源表达系统中进行的研究可能无法充分模拟疼痛患者的病理生理状况,而其他基因或调节蛋白中的单核苷酸变异体是这些特定变异体显示其作用的必要条件。我们的研究结果强调,对离子通道变异的生物物理研究需要谨慎评估,最好辅以对变异背景的研究,最好是在人类感觉神经元中进行研究。
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