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Building Blocks of Temporal Filters in Retinal Synapses

机译:视网膜突触中时间过滤器的构建基块

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摘要

Sensory systems must be able to extract features of a stimulus to detect and represent properties of the world. Because sensory signals are constantly changing, a critical aspect of this transformation relates to the timing of signals and the ability to filter those signals to select dynamic properties, such as visual motion. At first assessment, one might think that the primary biophysical properties that construct a temporal filter would be dynamic mechanisms such as molecular concentration or membrane electrical properties. However, in the current issue of PLOS Biology, Baden et al. identify a mechanism of temporal filtering in the zebrafish and goldfish retina that is not dynamic but is in fact a structural building block—the physical size of a synapse itself. The authors observe that small, bipolar cell synaptic terminals are fast and highly adaptive, whereas large ones are slower and adapt less. Using a computational model, they conclude that the volume of the synaptic terminal influences the calcium concentration and the number of available vesicles. These results indicate that the size of the presynaptic terminal is an independent control for the dynamics of a synapse and may reveal aspects of synaptic function that can be inferred from anatomical structure.
机译:感官系统必须能够提取刺激的特征以检测和代表世界的特性。由于感官信号不断变化,因此此转换的关键方面与信号的时序以及过滤这些信号以选择动态属性(例如视觉运动)的能力有关。初次评估时,人们可能会认为构成时间过滤器的主要生物物理特性将是动态机制,例如分子浓度或膜电特性。然而,在本期《 PLOS Biology》中,Baden等人。找出斑马鱼和金鱼视网膜中暂时过滤的机制,该机制不是动态的,但实际上是结构的组成部分—突触本身的物理大小。作者观察到,小的双极细胞突触末端是快速且高度适应的,而较大的双极细胞突触末端则较慢且适应性较小。他们使用计算模型得出结论,突触末端的体积会影响钙浓度和可用囊泡的数量。这些结果表明,突触前末端的大小是突触动力学的独立控制,并且可能揭示可以从解剖结构推断出的突触功能的各个方面。

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