Alkermes Inc., Waltham, MA, USA.
Nanion Technologies, Livingston, NJ, USA.
SLAS Discov. 2020 Jun;25(5):447-457. doi: 10.1177/2472555220902388. Epub 2020 Jan 31.
Conventionally, manual patch-clamp electrophysiological approaches are the gold standard for studying ion channel function in neurons. However, these approaches are labor-intensive, yielding low-throughput results, and are therefore not amenable for compound profiling efforts during the early stages of drug discovery. The SyncroPatch 384PE has been successfully implemented for pharmacological experiments in heterologous overexpression systems that may not reproduce the function of voltage-gated ion channels in a native, heterogeneous environment. Here, we describe a protocol allowing the characterization of endogenous voltage-gated potassium (K) and sodium (Na) channel function in developing primary rat cortical cultures, allowing investigations at a significantly improved throughput compared with manual approaches. Key neuronal marker expression and microelectrode array recordings of electrophysiological activity over time correlated well with neuronal maturation. Gene expression data revealed high molecular diversity in K and Na subunit composition throughout development. Voltage-clamp experiments elicited three major current components composed of inward and outward conductances. Further pharmacological experiments confirmed the endogenous expression of functional K and Na channels in primary cortical neurons. The major advantages of this approach compared with conventional manual patch-clamp systems include unprecedented improvements in experimental ease and throughput for ion channel research in primary neurons. These efforts demonstrated feasibility for primary neuronal ion channel investigation with the SyncroPatch, providing the foundation for future studies characterizing biophysical changes in endogenous ion channels in primary systems associated with disease or development.
传统上,手动膜片钳电生理方法是研究神经元离子通道功能的金标准。然而,这些方法劳动强度大,通量低,因此不适合药物发现早期的化合物筛选工作。SyncroPatch 384PE 已成功应用于异源过表达系统的药理学实验中,但可能无法在天然异质环境中重现电压门控离子通道的功能。在这里,我们描述了一种允许在发育中的原代大鼠皮质培养物中表征内源性电压门控钾 (K) 和钠 (Na) 通道功能的方案,与手动方法相比,该方案可显著提高通量。关键神经元标志物的表达和随时间变化的微电极阵列记录的电生理活性与神经元成熟度密切相关。基因表达数据显示,在整个发育过程中,K 和 Na 亚基组成具有很高的分子多样性。电压钳实验引发了由内向和外向电导组成的三个主要电流成分。进一步的药理学实验证实了原代皮质神经元中功能性 K 和 Na 通道的内源性表达。与传统的手动膜片钳系统相比,这种方法的主要优点包括在原代神经元的离子通道研究中实验的便利性和通量得到了前所未有的提高。这些努力证明了 SyncroPatch 用于原代神经元离子通道研究的可行性,为未来研究提供了基础,这些研究将描述与疾病或发育相关的原代系统中内源性离子通道的生物物理变化。