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本文引用的文献

1
Patch-clamp recordings from lateral line neuromast hair cells of the living zebrafish.从活体斑马鱼侧线毛细胞的膜片钳记录。
J Neurosci. 2013 Feb 13;33(7):3131-4. doi: 10.1523/JNEUROSCI.4265-12.2013.
2
Zebrafish larvae exhibit rheotaxis and can escape a continuous suction source using their lateral line.斑马鱼幼鱼表现出趋流性,并且可以使用它们的侧线逃避连续的吸力源。
PLoS One. 2012;7(5):e36661. doi: 10.1371/journal.pone.0036661. Epub 2012 May 3.
3
Effective sensory modality activating an escape triggering neuron switches during early development in zebrafish.在斑马鱼早期发育过程中,有效的感觉模态会激活逃逸触发神经元。
J Neurosci. 2012 Apr 25;32(17):5810-20. doi: 10.1523/JNEUROSCI.6169-11.2012.
4
Physiology of afferent neurons in larval zebrafish provides a functional framework for lateral line somatotopy.幼虫斑马鱼传入神经元的生理学为侧线体节同源性提供了功能框架。
J Neurophysiol. 2012 May;107(10):2615-23. doi: 10.1152/jn.01108.2011. Epub 2012 Feb 15.
5
Heterogeneity and dynamics of lateral line afferent innervation during development in zebrafish (Danio rerio).斑马鱼(Danio rerio)发育过程中侧线传入神经的异质性和动态变化。
J Comp Neurol. 2012 May 1;520(7):1376-86. doi: 10.1002/cne.22798.
6
Alternative startle motor patterns and behaviors in the larval zebrafish (Danio rerio).幼鱼斑马鱼(Danio rerio)的替代惊跳运动模式和行为。
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2012 Jan;198(1):11-24. doi: 10.1007/s00359-011-0682-1. Epub 2011 Oct 8.
7
Mechanism of spontaneous activity in afferent neurons of the zebrafish lateral-line organ.斑马鱼侧线器官传入神经元自发性活动的机制。
J Neurosci. 2011 Feb 2;31(5):1614-23. doi: 10.1523/JNEUROSCI.3369-10.2011.
8
Organization and physiology of posterior lateral line afferent neurons in larval zebrafish.幼鱼斑马鱼后外侧线传入神经元的组织和生理学。
Biol Lett. 2010 Jun 23;6(3):402-5. doi: 10.1098/rsbl.2009.0995. Epub 2010 Feb 24.
9
Larval zebrafish rapidly sense the water flow of a predator's strike.斑马鱼幼体能迅速感知捕食者攻击时的水流。
Biol Lett. 2009 Aug 23;5(4):477-9. doi: 10.1098/rsbl.2009.0048. Epub 2009 Mar 25.
10
Shared versus specialized glycinergic spinal interneurons in axial motor circuits of larval zebrafish.幼体斑马鱼轴向运动回路中共享与特化的甘氨酸能脊髓中间神经元
J Neurosci. 2008 Nov 26;28(48):12982-92. doi: 10.1523/JNEUROSCI.3330-08.2008.

幼虫斑马鱼后侧线单个神经丘刺激引发的传入和运动神经元活动。

Afferent and motoneuron activity in response to single neuromast stimulation in the posterior lateral line of larval zebrafish.

作者信息

Haehnel-Taguchi Melanie, Akanyeti Otar, Liao James C

机构信息

The Whitney Laboratory for Marine Bioscience, Department of Biology, University of Florida, Saint Augustine, Florida.

The Whitney Laboratory for Marine Bioscience, Department of Biology, University of Florida, Saint Augustine, Florida

出版信息

J Neurophysiol. 2014 Sep 15;112(6):1329-39. doi: 10.1152/jn.00274.2014. Epub 2014 Jun 25.

DOI:10.1152/jn.00274.2014
PMID:24966296
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4137249/
Abstract

The lateral line system of fishes contains mechanosensory receptors along the body surface called neuromasts, which can detect water motion relative to the body. The ability to sense flow informs many behaviors, such as schooling, predator avoidance, and rheotaxis. Here, we developed a new approach to stimulate individual neuromasts while either recording primary sensory afferent neuron activity or swimming motoneuron activity in larval zebrafish (Danio rerio). Our results allowed us to characterize the transfer functions between a controlled lateral line stimulus, its representation by primary sensory neurons, and its subsequent behavioral output. When we deflected the cupula of a neuromast with a ramp command, we found that the connected afferent neuron exhibited an adapting response which was proportional in strength to deflection velocity. The maximum spike rate of afferent neurons increased sigmoidally with deflection velocity, with a linear range between 0.1 and 1.0 μm/ms. However, spike rate did not change when the cupula was deflected below 8 μm, regardless of deflection velocity. Our findings also reveal an unexpected sensitivity in the larval lateral line system: stimulation of a single neuromast could elicit a swimming response which increased in reliability with increasing deflection velocities. At high deflection velocities, we observed that lateral line evoked swimming has intermediate values of burst frequency and duty cycle that fall between electrically evoked and spontaneous swimming. An understanding of the sensory capabilities of a single neuromast will help to build a better picture of how stimuli are encoded at the systems level and ultimately translated into behavior.

摘要

鱼类的侧线系统沿着体表包含被称为神经丘的机械感觉感受器,这些感受器能够检测相对于身体的水流运动。感知水流的能力影响许多行为,如集群、躲避捕食者和趋流性。在这里,我们开发了一种新方法,在记录斑马鱼幼体(Danio rerio)的初级感觉传入神经元活动或游泳运动神经元活动的同时,刺激单个神经丘。我们的结果使我们能够描述受控侧线刺激、其由初级感觉神经元的表征以及其随后行为输出之间的传递函数。当我们用斜坡指令使神经丘的壶腹偏转时,我们发现相连的传入神经元表现出适应性反应,其强度与偏转速度成正比。传入神经元的最大放电率随偏转速度呈S形增加,线性范围在0.1至1.0μm/ms之间。然而,当壶腹偏转小于8μm时,无论偏转速度如何,放电率都不会改变。我们的研究结果还揭示了斑马鱼幼体侧线系统中一种意想不到的敏感性:刺激单个神经丘可引发游泳反应,该反应的可靠性随偏转速度增加而提高。在高偏转速度下,我们观察到侧线诱发的游泳具有介于电诱发游泳和自发游泳之间的爆发频率和占空比中间值。了解单个神经丘的感觉能力将有助于更好地描绘刺激在系统层面是如何编码并最终转化为行为的。