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中文摘要
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描述(由申请人提供):神经科学的中心目标是了解神经元和肌肉如何实现学习算法。然而,尽管对人类进行了数十年的心理物理学研究,但我们对运动学习如何在生理上实现的理解是基本的。因此,在学习的心理物理模型和重塑行为的运动程序中的生理变化之间存在着一个关键的差距。鸣禽提供了一个生理上可访问的模型系统,在其中研究行为可塑性。然而,以前研究歌曲学习的时间尺度太长,无法进行单神经元记录,因此无法识别学习背后的神经活动变化。此外,人们对发声肌肉本身的功能知之甚少,限制了我们对发声肌肉和激活它们的神经元如何控制行为上重要的声学参数的理解。所提出的实验克服了这些障碍相结合的行为和计算方法从人类运动心理物理学与鸣禽系统的神经生理学的可访问性,连接学习算法的神经元和肌肉。我们的长期目标是了解大脑如何控制和修改声音输出,因为动物获得发声行为,并在其一生中保持发声性能。所提出的实验的目的是揭示如何一个单一的声学参数-基频(音高)-在短期声乐纠错修改。我们的中心假设是,音高学习强烈地依赖于先前感觉运动经验的统计数据,发声肌肉在不同的发声姿势(“歌唱音节”)上对音高施加双向影响,音高学习是通过改变发声姿势(“歌唱音节”)来实现的。 前脑运动前核神经元放电的尖峰含量。根据大量的初步数据,三个具体目标将检验这一假设。第一个目标将挑战目前的声乐学习理论,通过使用听觉反馈的操纵来驱动歌唱鸟类的自适应音高变化。第二个具体目标将量化单个发声肌肉的功能,并通过结合精确定时的肌肉刺激,行为操纵和EMG记录来揭示肌肉活动在学习过程中的变化。第三个目标将(第一次)定义的变化神经活动的基础上声乐学习的记录从单个神经元在快速声乐学习范式,确定一个轨迹的声乐运动可塑性和建立鸣禽作为唯一可用的系统之一,研究神经活动的变化在网上学习。这种方法是创新的,因为它允许我们在学习过程中在线检测运动命令信号的变化,为运动学习的行为和生理方法之间提供了关键的联系。这些研究意义重大,因为更好地理解感觉运动学习的机制有助于设计利用复杂行为可塑性的康复策略。
英文摘要
DESCRIPTION (provided by applicant): A central goal of neuroscience is to understand how learning algorithms are implemented by neurons and muscles. However, despite decades of psychophysical studies in humans, our understanding of how motor learning is implemented physiologically is rudimentary. A critical gap therefore exists between psychophysical models of learning and the physiological changes in the motor program that reshape behavior. Songbirds provide a physiologically accessible model system in which to investigate behavioral plasticity. However, song learning has previously been studied on timescales too long to allow single-neuron recordings, making it impossible to identify the changes in neural activity that underlie learning. Furthermore, the functions of the song muscles themselves are poorly understood, limiting our understanding of how vocal muscles and the neurons that activate them control behaviorally important acoustic parameters. The proposed experiments overcome these obstacles by combining behavioral and computational approaches drawn from human motor psychophysics with the neurophysiological accessibility of the songbird system, linking learning algorithms to neurons and muscles. Our long-term goal is to understand how the brain controls and modifies vocal output as an animal acquires vocal behaviors and maintains vocal performance throughout its lifetime. The objective of the proposed experiments is to reveal how a single acoustic parameter - fundamental frequency (pitch) - is modified during short-term vocal error correction. Our central hypothesis is that pitch learning depends strongly on the statistics of prior sensorimotor experience, that vocal muscles exert bidirectional influence on pitch across different vocal gestures ("song syllables"), and that pitch learning is implemented by altering the spike content of bursts fired by neurons in a forebrain premotor nucleus. Drawing on significant quantities of preliminary data, three specific aims will test this hypothesis. The first aim will challenge current theories of vocal learning by using manipulations of auditory feedback to drive adaptive pitch changes in singing birds. The second specific aim will quantify the functions of individual vocal muscles and reveal how muscle activity changes during learning by combining precisely-timed muscle stimulation, behavioral manipulations, and EMG recordings. The third aim will (for the first time) define the changes neural activity that underlie vocal learning by recording from single neurons during a rapid vocal learning paradigm, identifying a locus of vocal motor plasticity and establishing the songbird as one of the only available systems for studying changes in neural activity during online learning. This approach is innovative because it allows us to detect changes in motor command signals online during learning, providing a critical link between behavioral and physiological approaches to motor learning. These studies are significant because a better understanding of the mechanisms of sensorimotor learning could aid in the design of rehabilitative strategies that exploit the plasticity of complex behavio.
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Spike timing codes for motor control
  • 批准号:
    9895864
  • 项目类别:
  • 资助金额:
    $33.8万
  • 财政年份:
    2017
  • 负责人:
    Samuel Sober
  • 依托单位:
Spike timing codes for motor control
  • 批准号:
    10112963
  • 项目类别:
  • 资助金额:
    $33.77万
  • 财政年份:
    2017
  • 负责人:
    Samuel Sober
  • 依托单位:
Spike timing codes for motor control
  • 批准号:
    9309958
  • 项目类别:
  • 资助金额:
    $30.8万
  • 财政年份:
    2017
  • 负责人:
    Samuel Sober
  • 依托单位:
Administrative Supplement: Vocal motor control and sensorimotor learning - behavior, muscles, and neurons
  • 批准号:
    8849720
  • 项目类别:
  • 资助金额:
    $2.36万
  • 财政年份:
    2014
  • 负责人:
    Samuel Sober
  • 依托单位:
海外基金