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纹理信号沿大鼠触须的传递。

Conveyance of texture signals along a rat whisker.

机构信息

Systems Neurophysiology, Werner Reichardt Centre for Integrative Neuroscience, University of Tübingen, Otfried Müller Str. 25, 72076, Tübingen, Germany.

Systems Neurophysiology, Hertie Institute for Clinical Brain Research, University of Tübingen, Tübingen, Germany.

出版信息

Sci Rep. 2021 Jun 30;11(1):13570. doi: 10.1038/s41598-021-92770-3.

Abstract

Neuronal activities underlying a percept are constrained by the physics of sensory signals. In the tactile sense such constraints are frictional stick-slip events, occurring, amongst other vibrotactile features, when tactile sensors are in contact with objects. We reveal new biomechanical phenomena about the transmission of these microNewton forces at the tip of a rat's whisker, where they occur, to the base where they engage primary afferents. Using high resolution videography and accurate measurement of axial and normal forces at the follicle, we show that the conical and curved rat whisker acts as a sign-converting amplification filter for moment to robustly engage primary afferents. Furthermore, we present a model based on geometrically nonlinear Cosserat rod theory and a friction model that recreates the observed whole-beam whisker dynamics. The model quantifies the relation between kinematics (positions and velocities) and dynamic variables (forces and moments). Thus, only videographic assessment of acceleration is required to estimate forces and moments measured by the primary afferents. Our study highlights how sensory systems deal with complex physical constraints of perceptual targets and sensors.

摘要

感知背后的神经活动受到感觉信号物理特性的限制。在触觉中,这种限制是摩擦粘滑事件,除了其他振动触觉特征外,当触觉传感器与物体接触时就会发生这种事件。我们揭示了在老鼠触须尖端发生的这些微牛顿力传递的新的生物力学现象,以及它们如何从尖端传递到基部,从而与初级传入纤维接触。我们使用高分辨率录像技术和对毛囊轴向和法向力的精确测量,表明锥形和弯曲的老鼠触须作为一个信号转换放大滤波器,用于稳健地与初级传入纤维接触。此外,我们提出了一个基于几何非线性科瑟拉特杆理论和摩擦模型的模型,该模型再现了观察到的整个触须动力学。该模型量化了运动学(位置和速度)和动力学变量(力和力矩)之间的关系。因此,只需要录像评估加速度,就可以估计初级传入纤维测量的力和力矩。我们的研究强调了感觉系统如何处理感知目标和传感器的复杂物理限制。

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