Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, United States.
ACS Chem Neurosci. 2015 Aug 19;6(8):1468-75. doi: 10.1021/acschemneuro.5b00128. Epub 2015 Jul 1.
Dopamine is an important neurotransmitter that exhibits numerous functions in the healthy, injured, and diseased brain. Fast scan cyclic voltammetry paired with electrical stimulation of dopamine axons is a popular and powerful method for investigating the dynamics of dopamine in the extracellular space. Evidence now suggests that the heterogeneity of electrically evoked dopamine responses reflects the inherent kinetic diversity of dopamine systems, which might contribute to their diversity of physiological function. Dopamine measurements by fast scan cyclic voltammetry are affected by the adsorption of dopamine to carbon fiber electrodes. The temporal distortion caused by dopamine adsorption is correctable by a straightforward mathematical procedure. The corrected responses exhibit excellent agreement with a dopamine kinetic model cast to provide a generic description of restricted diffusion, short-term plasticity of dopamine release, and first-order dopamine clearance. The new DA kinetic model brings to light the rich kinetic information content of electrically evoked dopamine responses recorded via fast scan cyclic voltammetry in the rat dorsal striatum.
多巴胺是一种重要的神经递质,在健康、受损和患病的大脑中表现出多种功能。快速扫描循环伏安法与多巴胺轴突的电刺激相结合,是研究细胞外空间中多巴胺动力学的一种流行且强大的方法。有证据表明,电诱发多巴胺反应的异质性反映了多巴胺系统固有的动力学多样性,这可能有助于它们具有多样性的生理功能。快速扫描循环伏安法测量的多巴胺受到多巴胺对碳纤维电极的吸附的影响。通过一个简单的数学程序可以校正多巴胺吸附引起的时间失真。校正后的反应与多巴胺动力学模型非常吻合,该模型提供了受限扩散、多巴胺释放的短期可塑性和一级多巴胺清除的一般描述。新的 DA 动力学模型揭示了通过快速扫描循环伏安法在大鼠背侧纹状体中记录的电诱发多巴胺反应所包含的丰富动力学信息。