Walmsley B
Faculty of Medicine, The University of Newcastle, New South Wales, Australia.
Proc Biol Sci. 1995 Aug 22;261(1361):245-50. doi: 10.1098/rspb.1995.0144.
At some synaptic connections in the central nervous system, amplitude distributions of evoked synaptic currents exhibit surprisingly sharp and regularly spaced peaks. At these connections, detailed analysis of the peaks has led to the proposal that the 'quantal' synaptic current displays very little variability, not only at a release site, but also between release sites. In this study the latter hypothesis has been tested using simulations of evoked transmission. In contrast with previous conclusions, these simulations demonstrate that the experimental observation of regularly spaced peaks in amplitude distributions of synaptic currents is compatible with large underlying differences in the synaptic current amplitudes between release sites. The simulations also reveal that quantal analysis based entirely on the observation and analysis of regularly spaced peaks in evoked synaptic current amplitude distributions, cannot be used with confidence to estimate presynaptic release probabilities, 'quantal' current amplitudes at each release site, or the total number of available release sites. This problem may be a confounding factor in determining whether pre- or postsynaptic changes underlie alterations in synaptic efficacy, such as occurs during long term potentiation.
在中枢神经系统的某些突触连接中,诱发突触电流的幅度分布呈现出惊人的尖锐且间隔规律的峰值。在这些连接部位,对峰值的详细分析引发了这样一种观点,即“量子化”突触电流不仅在一个释放位点,而且在不同释放位点之间的变化都非常小。在本研究中,通过诱发传递的模拟对后一种假设进行了检验。与先前的结论相反,这些模拟表明,突触电流幅度分布中出现间隔规律的峰值这一实验观察结果,与释放位点之间突触电流幅度存在巨大潜在差异是相符的。模拟还揭示,完全基于对诱发突触电流幅度分布中间隔规律的峰值进行观察和分析的量子分析,不能可靠地用于估计突触前释放概率、每个释放位点的“量子化”电流幅度或可用释放位点的总数。在确定突触效能改变(如在长时程增强过程中发生的那样)是由突触前还是突触后变化引起时,这个问题可能是一个混杂因素。