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首页> 外文期刊>Clinical EEG and neuroscience: official journal of the EEG and Clinical Neuroscience Society (ENCS) >From neuroscience to application in neuropharmacology: A generation of progress in electrophysiology.
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From neuroscience to application in neuropharmacology: A generation of progress in electrophysiology.

机译:从神经科学到神经药理学的应用:电生理学的进步。

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A continuum from neuronal cellular/subcellular properties to system processes appears to exist in many instances and to allow privileged approaches in neuroscience and neuropharmacology research. Brain signals and the cholinergic and GABAergic systems, in vivo and in vitro evidence from studies on the retina, or the "gamma band" oscillations in neuron membrane potential/spiking rate and neuronal assemblies are examples in this respect. However, spontaneous and stimulus-event-related signals at any location and time point reflect brain state conditions that depend on neuromodulation, neurotransmitter interaction, hormones (e.g., glucocorticois, ACTH, estrogens) and neuroendocrine interaction at different levels of complexity, as well as on the spontaneous or experimentally-induced changes in metabolism (e.g., glucose, ammonia), blood flow, pO2, pCO2, acid/base balance, K activity, etc., that occur locally or systemically. Any of these factors can account for individual differences and/or changes over time that often are (or need to be) neglected in pharmaco-EEG studies or are dealt with statistically and by controlling the experimental conditions. As a result, the electrophysiological effects of neuroactive drugs are to an extent non-specific and require adequate modeling and precise correlation with independent parameters (e.g., drug kinetics, vigilance, hormonal profile or metabolic status, etc.) to avoid biased results in otherwise controlled studies.
机译:从神经元细胞/亚细胞特性到系统过程的连续性似乎在许多情况下都存在,并且允许在神经科学和神经药理学研究中采用特权方法。在这方面,脑信号,胆碱能和GABA能系统,视网膜研究的体内和体外证据,或神经元膜电位/加标速率和神经元组装的“伽玛谱带”振荡就是例子。然而,在任何位置和时间点的自发和与刺激事件相关的信号都反映了大脑状态,该状态取决于神经调节,神经递质相互作用,激素(例如糖皮质激素,ACTH,雌激素)和神经内分泌相互作用的复杂程度不同,以及在局部或全身发生的新陈代谢(例如葡萄糖,氨气),血流量,pO2,pCO2,酸/碱平衡,K活性等的自发或实验性变化。这些因素中的任何一个都可以解释在pharmaco-EEG研究中经常(或需要)忽略的个体差异和/或随时间的变化,或者可以通过控制实验条件进行统计学处理。结果,神经活性药物的电生理作用在一定程度上是非特异性的,需要适当的建模和与独立参数(例如,药物动力学,警惕性,荷尔蒙谱或代谢状态等)的精确关联,以避免其他情况下的偏倚结果。对照研究。

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