课题基金 / 基金详情

RUI: Adult Compensatory Plasticity in an Invertebrate Sensory System

RUI: Adult Compensatory Plasticity in an Invertebrate Sensory System
RUI:无脊椎动物感觉系统中的成人补偿可塑性
批准号:
1753730
负责人:
Hadley Horch
金额:
$80.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-01 至 2023-07-31

项目摘要

项目成果

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中文摘要
翻译
非技术性段落:神经科学中最重要的问题之一是神经系统在衰老过程中如何保持灵活性。在年轻的生物体中,神经系统是高度可塑的;神经细胞可以改变它们的形状和功能。老年人的神经系统往往不那么灵活,大规模的重组是不寻常的。这项研究检查了蟋蟀负责听觉的神经回路的成年可塑性,这些神经回路在受损后可以再生和重新连接听觉神经连接。这种可塑性产生听力损失的功能恢复,这在个体蟋蟀中是可变的。这个项目的目标是了解这种可塑性的机制,并解释个体之间功能恢复的差异。由于这些相同或相似的机制存在于各种各样的生物体中,从这些板球实验中学到的东西将普遍适用于其他生物体中的电路。这项工作的更广泛的科学影响将有助于更深入地了解成人神经系统可塑性的机制,以及如何利用这些知识促进神经系统创伤后的功能恢复。这项工作也将在鲍登学院和缅因州内产生重要的教育影响。本科生将积极参与拟议的科学研究,并将作出特别努力,以确定,支持和保留来自代表性不足的群体的学生。此外,PI和她的学生将参加当地小学和Wabanaki中学学生的年度STEM外展活动,扩大资金的社会影响。技术段落:关于神经系统的一个持续存在的问题是,随着它们的成熟,它们的可塑性如何。 该研究项目的重点是成年期大规模解剖可塑性的罕见例子之一。蟋蟀Gryllus bimaculatus成年听觉系统表现出深刻的结构可塑性后,失去了一只耳朵,包括大规模的增长和分支的树突和轴突。这些变化导致特定波长的生理恢复,以补偿耳朵的损失;不同蟋蟀的恢复程度是高度可变的。PI和她的学生将测试解剖发芽的程度与恢复相关的假设,如对听觉刺激和听觉系统恢复的行为指示的生理反应的强度所示。 将通过测试负趋声性、听觉神经元对声音的电生理反应以及量化听觉神经元中的树突和轴突变化来评估个体动物内的恢复程度。贝叶斯统计建模将用于分析这些水平的数据。实验将测试是否有可能通过改变信号蛋白信号来操纵形式和功能。dsRNA将用于操纵sema和plex水平,并将评估形态学、生理学和行为功能的任何结果变化。鉴于神经元发育和可塑性策略的进化保守性,我们从这些实验中学到了什么?该奖项反映了NSF的法定使命,并已被认为是值得通过使用基金会的智力价值和更广泛的影响审查标准进行评估的支持。
英文摘要
Non-Technical Paragraph:One of the most important questions in neuroscience is how flexible nervous systems remain as they age. In young organisms, nervous systems are highly plastic; neural cells can change their shape and their function. Older nervous systems tend to be less flexible, and large-scale reorganizations are unusual. This research examines adult plasticity in neural circuits responsible for hearing in crickets, which can regrow and rewire auditory neural connections after damage. This plasticity produces functional recovery of hearing loss that is variable among individual crickets. The goal of this project is to understand the mechanisms that govern this type of plasticity, and to explain the variability in functional recovery among individuals. Because these same or similar mechanisms exist in a wide variety of organisms, what is learned from these cricket experiments will be generally applicable to circuits in other organisms. The broader scientific impact of the work will be its contribution to a deeper understanding of the mechanisms of adult nervous system plasticity and how this knowledge can be used to promote functional recovery after nervous system trauma. This work will also have important educational impacts both at Bowdoin College and within Maine. Undergraduates will be active participants in the proposed scientific research, and a special effort will be made to identify, support, and retain students from underrepresented groups. In addition, the PI and her students will participate in annual STEM outreach activities at local elementary schools and with Wabanaki middle school students, widening the societal impact of the funding.Technical Paragraph:A persistent question about nervous systems is how plastic they remain as they mature. This research project focuses on one of the rare examples of large-scale anatomical plasticity seen in adulthood. The adult auditory system of the cricket Gryllus bimaculatus demonstrates profound structural plasticity after the loss of an ear, consisting of large-scale growth and branching of dendrites and axons. These changes result in wavelength-specific physiological recovery that compensates for the loss of the ear; the extent of recovery in different crickets is highly variable. The PI and her students will test the hypothesis that the extent of anatomical sprouting correlates with recovery, as seen in the strength of physiological responses to auditory stimuli and to behavioral indications of auditory system recovery. The extent of recovery within individual animals will be assessed by testing negative phonotaxis, electrophysiological responses of auditory neurons to sound, and quantifying dendritic and axonal changes in auditory neurons. Bayesian statistical modeling will be used to analyze the data across these levels. Experiments will test whether it is possible to manipulate form and function by altering semaphorin signaling. DsRNA will be used to manipulate sema and plex levels, and any resulting changes in morphology, physiology and behavioral function will be assessed. Given the evolutionary conservation of neuronal strategies for development and plasticity, what is learned from these experiments using G. bimaculatus will be applicable to deafferented circuits in a wide variety of other organisms.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
RUI: Evaluation of Neurotrophic-Like properties of Spaetzle-Toll Signaling in the Developing and Adult Cricket CNS
  • 批准号:
    2230829
  • 项目类别:
    Standard Grant
  • 资助金额:
    $70.52万
  • 财政年份:
    2023
  • 负责人:
    Hadley Horch
  • 依托单位:
海外基金