Dervinis Martynas, Major Guy
School of Biosciences, Cardiff University, Cardiff, United Kingdom.
Front Cell Neurosci. 2025 Jun 18;19:1598016. doi: 10.3389/fncel.2025.1598016. eCollection 2025.
Measurements of miniature postsynaptic currents (mPSCs) or potentials (mPSPs) in the soma of neurons of the central nervous system (CNS) provide a way of quantifying the synaptic function at the network level and, therefore, are routine in the neurophysiology literature. These miniature responses (or minis) are thought to be elicited by the spontaneous release of a single neurotransmitter vesicle, also called a quantum. As such, their measurement at the soma can potentially offer a technically straightforward way of estimating "quantal sizes" of central synapses. However, popular methods for detecting minis in whole-cell recordings fall short of being able to reliably distinguish them from background physiological noise. This issue has received very limited attention in the literature, and its scope as well as the relative performance of existing algorithms have not been quantified. As a result, solutions for reliably measuring the quantal size in somatic recordings also do not exist. As the first step in proposing and testing a potential solution, we developed and described a novel miniature postsynaptic event detection algorithm as part of our quantal analysis software called "minis". We tested its performance in detecting real and simulated minis in whole-cell recordings from pyramidal neurons in rat neocortical slices and compared it to two of the most-used mini detection algorithms. This benchmarking revealed superior detection by our algorithm. The release version of the algorithm also offers great flexibility via graphical and programming interfaces.
对中枢神经系统(CNS)神经元胞体中的微小突触后电流(mPSC)或电位(mPSP)进行测量,提供了一种在网络层面量化突触功能的方法,因此在神经生理学文献中很常见。这些微小反应(或微突触后电流)被认为是由单个神经递质囊泡(也称为一个量子)的自发释放所引发的。因此,在胞体处对它们进行测量,有可能提供一种从技术角度直接估计中枢突触“量子大小”的方法。然而,全细胞记录中检测微突触后电流的常用方法,无法可靠地将它们与背景生理噪声区分开来。这个问题在文献中受到的关注非常有限,其范围以及现有算法的相对性能尚未得到量化。因此,也不存在可靠测量胞体记录中量子大小的解决方案。作为提出和测试潜在解决方案的第一步,我们开发并描述了一种新型的微小突触后事件检测算法,作为我们名为“minis”的量子分析软件的一部分。我们在大鼠新皮质切片中锥体神经元的全细胞记录中测试了该算法在检测真实和模拟微突触后电流方面的性能,并将其与两种最常用的微突触后电流检测算法进行了比较。这种基准测试显示我们的算法具有更优的检测能力。该算法的发布版本还通过图形界面和编程接口提供了极大的灵活性。