EXPRESS:加巴喷丁对人类背根神经节的影响:供体特异性电生理和转录组谱。

IF 2.8 3区 医学 Q2 NEUROSCIENCES
Jenna B Demeter, Nesia A Zurek, Maddy R Koch, Aleyah E Goins, Cristian O Holguin, Mark W Shilling, Michael S Davis, Reza Ehsanian, Sascha Ra Alles, June Bryan de la Peña
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引用次数: 0

摘要

神经性疼痛影响大约10%的成年人,通常用加巴喷丁(GBP)治疗,这是一种改进型抗惊厥药物。尽管它被广泛使用,但GBP的有效性在患者中差异很大,这突出了更好地了解其对人类伤害感受器的功能和分子影响的必要性。在这里,我们描述了GBP对来自道德同意的人类供体的背根神经节(DRGs)的初级神经元的电生理和转录组效应。利用膜片钳电生理学,我们证明了GBP治疗降低了神经元的兴奋性,在多放电与单放电神经元中效果更明显。值得注意的是,在体外GBP治疗的电生理反应中观察到显著的供体特异性变异。对GBP反应更强的供体DRG组织的RNA测序显示,与离子转运、突触传递、炎症和免疫反应相关的基因的转录组表达存在差异。交叉转录组学分析进一步表明,GBP治疗抵消了这些改变,挽救了通路水平和几个关键基因的异常基因表达。这项研究提供了GBP对人类DRG神经元影响的全面电生理和转录组学分析。这些发现增强了我们对GBP对周围感觉神经元的机制作用的理解,并有助于优化其在神经性疼痛治疗中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EXPRESS: Gabapentin's effect on human dorsal root ganglia: Donor-specific electrophysiological and transcriptomic profiles.

Neuropathic pain affects approximately 10% of the adult population and is commonly treated with gabapentin (GBP), a repurposed anticonvulsant drug. Despite its widespread use, GBP's effectiveness varies significantly among patients, highlighting the need to better understand its functional and molecular impacts on human nociceptors. Here we characterized the electrophysiological and transcriptomic effects of GBP on primary neurons derived from the dorsal root ganglia (DRGs) of ethically consented human donors. Using patch-clamp electrophysiology, we demonstrated that GBP treatment reduced neuronal excitability, with more pronounced effects in multi-firing vs. single-firing neurons. Notably, significant donor-specific variability was observed in electrophysiological responsiveness to GBP treatment in vitro. RNA sequencing of DRG tissue from the donor that was more responsive to GBP revealed differences in transcriptome-wide expression of genes associated with ion transport, synaptic transmission, inflammation, and immune response. Cross-transcriptomic analyses further showed that GBP treatment counteracted these alterations, rescuing aberrant gene expression at the pathway level and for several key genes. This study provides a comprehensive electrophysiological and transcriptomic profile of the effects of GBP on human DRG neurons. These findings enhance our understanding of GBP's mechanistic actions on peripheral sensory neurons and could help optimize its use for managing neuropathic pain.

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来源期刊
Molecular Pain
Molecular Pain 医学-神经科学
CiteScore
5.60
自引率
3.00%
发文量
56
审稿时长
6-12 weeks
期刊介绍: Molecular Pain is a peer-reviewed, open access journal that considers manuscripts in pain research at the cellular, subcellular and molecular levels. Molecular Pain provides a forum for molecular pain scientists to communicate their research findings in a targeted manner to others in this important and growing field.
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