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首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Preferentially impaired neurotransmitter release sites not their discreteness compromise the validity of microdialysis zero-net-flux method.
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Preferentially impaired neurotransmitter release sites not their discreteness compromise the validity of microdialysis zero-net-flux method.

机译:优先受损的神经递质释放位点不是其离散性会影响微透析零净通量法的有效性。

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摘要

Abstract Intracerebral microdialysis is a popular technique for studying neurochemistry and neural circuits in various brain regions. Recent studies called into question the validity of the microdialysis zero-net-flux (ZNF) method by suggesting that this method significantly underestimates the basal level of extracellular dopamine as a result of the discreteness of dopamine release sites as well as the preferential damage to dopamine release over uptake. To identify which factor is most important in undermining the microdialysis ZNF measurements and the extent of underestimation, two mathematical models were developed to explore the influences of the discrete nature and the probe-induced impairment in the neurotransmitter release. The two models differ in their characterizations of the transmitter release as spatially discrete and homogeneous, respectively. Simulations using physiologically reasonable parameters for striatal dopamine systems indicate that the preferential release site damage surrounding the implanted probe is the most important determinant to the underestimation of the microdialysis ZNF concentration. Under normal physiological conditions, the discreteness of neurotransmitter release sites is of minor importance, except when neuronal degeneration occurs. It is concluded that homogeneous models can adequately describe microdialysis operating processes as long as the corresponding tissue damage parameters in such models are appropriately incorporated.
机译:摘要脑内微透析是研究大脑各个区域神经化学和神经回路的一种流行技术。最近的研究质疑微透析零净通量(ZNF)方法的有效性,因为该方法显着低估了由于多巴胺释放位点的离散性以及对多巴胺的优先破坏而导致的细胞外多巴胺的基础水平释放过量吸收。为了确定哪个因素在破坏微透析ZNF测量值和低估程度方面最重要,开发了两个数学模型来探索离散性质和探针诱导的神经递质释放障碍的影响。两种模型在发射机释放特性上的区别分别是空间离散的和均质的。使用生理上合理的参数对纹状体多巴胺系统进行的模拟表明,植入探针周围的优先释放位点受损是低估微透析ZNF浓度的最重要决定因素。在正常生理条件下,神经递质释放位点的离散性次要意义不大,除非发生神经元变性。结论是,只要适当地合并了此类模型中的相应组织损伤参数,均质模型就可以充分描述微透析操作过程。

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