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Synaptic bouton properties are tuned to best fit the prevailing firing pattern

机译:突触按钮的属性已调整为最适合当前的发射模式

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摘要

The morphology of presynaptic specializations can vary greatly ranging from classical single-release-site boutons in the central nervous system to boutons of various sizes harboring multiple vesicle release sites. Multi-release-site boutons can be found in several neural contexts, for example at the neuromuscular junction (NMJ) of body wall muscles of Drosophila larvae. These NMJs are built by two motor neurons forming two types of glutamatergic multi-release-site boutons with two typical diameters. However, it is unknown why these distinct nerve terminal configurations are used on the same postsynaptic muscle fiber. To systematically dissect the biophysical properties of these boutons we developed a full three-dimensional model of such boutons, their release sites and transmitter-harboring vesicles and analyzed the local vesicle dynamics of various configurations during stimulation. Here we show that the rate of transmission of a bouton is primarily limited by diffusion-based vesicle movements and that the probability of vesicle release and the size of a bouton affect bouton-performance in distinct temporal domains allowing for an optimal transmission of the neural signals at different time scales. A comparison of our in silico simulations with in vivo recordings of the natural motor pattern of both neurons revealed that the bouton properties resemble a well-tuned cooperation of the parameters release probability and bouton size, enabling a reliable transmission of the prevailing firing-pattern at diffusion-limited boutons. Our findings indicate that the prevailing firing-pattern of a neuron may determine the physiological and morphological parameters required for its synaptic terminals.
机译:突触前特化的形态可以变化很大,范围从中枢神经系统中的经典单释放部位的按钮到容纳多个囊泡释放部位的各种大小的按钮。可以在几种神经环境中找到多释放位置的按钮,例如在果蝇幼虫体壁肌肉的神经肌肉接头(NMJ)处。这些NMJ由两个运动神经元组成,形成两种具有两种典型直径的两种类型的谷氨酸能多释放部位钮扣。但是,不知道为什么在同一突触后肌纤维上使用这些截然不同的神经末梢结构。为了系统地剖析这些钮扣的生物物理特性,我们开发了此类钮扣,其释放部位和携带递质的囊泡的完整三维模型,并分析了刺激过程中各种构型的局部囊泡动力学。在这里,我们表明,钮扣的传输速率主要受基于扩散的囊泡运动的限制,并且在不同的时域内,囊泡释放的可能性和钮扣的大小会影响钮扣的性能,从而实现神经信号的最佳传递在不同的时间尺度上。将我们的计算机模拟与两个神经元的自然运动模式的体内记录进行的比较表明,钮扣的特性类似于参数释放概率和钮扣大小的良好协调,从而能够可靠地传输当前的射击模式。扩散受限的按钮。我们的发现表明,神经元的主要放电模式可能决定了其突触末端所需的生理和形态学参数。

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