课题基金 / 基金详情

Revelation of sound-induced motion patterns of fish auditory structures: a new experimental tomography-based 4D approach

Revelation of sound-induced motion patterns of fish auditory structures: a new experimental tomography-based 4D approach
鱼类听觉结构的声音诱发运动模式的揭示:一种新的基于实验断层扫描的 4D 方法
批准号:
491091951
负责人:
Professor Dr. Martin Heß
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:

项目摘要

项目成果

Professor Dr. Martin Heß的其他基金

相似基金

相关文献

中文摘要
翻译
现代硬骨鱼(真骨目)在听觉能力和相应结构的形态上表现出高度的多样性,如内耳的耳石和泳囊。尽管有如此巨大的多样性,但提供关于听觉结构功能相互作用基本原理的实验证据很少,而且主要集中在几个模式物种上,如金鱼或斑马鱼。这是因为在不进行手术暴露的情况下,很难在原位评估听觉结构的运动模式。在欧洲同步辐射设施以前的项目中,我们开发了一种装置,能够以非侵入性的方式可视化鱼类听觉结构的声音诱导运动。然而,运动结构只能在2D+时间内捕捉到,从而忽略了它们的三维性,并且阻碍了对其功能交互作用的解释。因此,在我们计划的项目中,我们设想了一种基于瑞士光源的新的4D(三个空间维度+时间)层析成像方法来表征从游泳通过韦伯利亚听小骨到耳石的声音诱导的相互作用。为了解决听觉结构的变异性,我们将比较六个耳藻物种,即鲤形物种Danio rerio,Pangio kuhlii和Sewellia lineolata,以及Siluriform物种Kyptopterus vitreolus,Ancistrus dolichop terus和Corydoras aeneus。具体地说,我们的目标是开发一种高时空分辨率的原位运动捕捉装置。这将首次允许根据声音成分(声压与声致粒子运动)、频率、声级和种类来量化听觉结构在3D方面的运动模式。在瑞士光源之前的研究中,我们测试了一台20毫升的微型驻波管状装置的原型,用于时间分辨断层扫描(像素尺寸:2.75微米;帧速率:2 kHz),它可以在声压或声致粒子运动条件下运行。在此基础上,我们将通过在Tomcat光束线上安装新的显微镜来提高空间分辨率(像素大小:<1.0微米)和时间分辨率(帧速率:20 kHz)。运动模式将使用数据处理流水线通过旋转和平移来量化。我们的研究将从根本上增强对硬骨鱼声音传输的了解,方法是在测试几十年前提出的关于韦伯氏装置功能的假设的同时,表征声音诱导运动从泳囊到内耳的路径。这些结果将为未来对濒危物种或化石物种等实验室实验中无法建立的鱼类运动模式进行建模的研究提供重要的投入。我们的方法学发展将开启新的生物力学应用,并有利于正在进行的研究,例如,阐明病理性耳结构对人类中耳听小骨运动的影响。
英文摘要
Modern bony fishes (Teleostei) show a high diversity in auditory abilities and in the morphology of the corresponding structures such as the otoliths in the inner ears and the swimbladder. Despite this enormous diversity, experimental evidence providing insights into the basic principles of the functional interaction of auditory structures is rare and focuses on a few model species such as goldfish or zebrafish. This is due to the difficulty to evaluate the motion patterns of auditory structures in-situ without exposing them surgically. In previous projects at the European Synchrotron Radiation Facility, we developed a setup that enabled visualizing the sound-induced motion of fish auditory structures in a non-invasive way. The moving structures, however, were captured only in 2D plus time, thereby ignoring their three-dimensionality and hampering interpretations of their functional interplay.In our planned project, we therefore envisage a new 4D (three spatial dimensions plus time) tomography-based approach at the Swiss Light Source to characterize the sound-induced interaction from the swimbladder through the Weberian ossicles to the otoliths. To address the variability of the auditory structures, we will compare six otophysan species, namely the cypriniform species Danio rerio, Pangio kuhlii, and Sewellia lineolata, and the siluriform species Kryptopterus vitreolus, Ancistrus dolichopterus, and Corydoras aeneus. Specifically, we aim to develop a setup to capture the in-situ motion with high spatio-temporal resolutions. This will, for the first time, allow to quantify the motion patterns of the auditory structures in their 3D aspect depending on the sound component (sound pressure versus sound-induced particle motion), frequency, sound level, and species.In previous studies at the Swiss Light Source, we tested a prototype of a 20mL-miniature standing wave tube-like setup for time-resolved tomography (pixel size: 2.75µm; framerate: 2kHz) which can be run under sound pressure or sound-induced particle motion conditions. Based on this, we will increase the spatial (pixel size: < 1.0µm) and temporal resolutions (framerate: 20kHz) by implementing a new microscope at the TOMCAT beamline. Motion patterns will be quantified in terms of rotation and translation using a data processing pipeline.Our study will fundamentally enhance the knowledge of sound transmission in teleosts by characterizing the path of sound-induced motion from the swimbladder to the inner ears while testing hypotheses on the function of the Weberian apparatus formulated decades ago. The outcomes will yield vital input for future studies modelling motion patterns in fishes not available for lab experiments such as endangered or fossil species. Our methodological developments will unlock novel biomechanical applications and benefit ongoing studies which, for example, elucidate the effects of pathologic ear structures on the motion of the auditory ossicles in the human middle ear.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
High resolution 3D-neuroanatomy of the retina - investigation of wiring rules in different contrast mechanisms
  • 批准号:
    226127164
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    2012
  • 负责人:
    Professor Dr. Martin Heß
  • 依托单位:
Die Neuroanatomie der Sardellenretina - ein Beitrag zum Verständnis des Polarisationssehens bei Wirbeltieren.
  • 批准号:
    79214442
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    2008
  • 负责人:
    Professor Dr. Martin Heß
  • 依托单位:
国内基金
海外基金
通用声场空间信息捡拾与重放方法的研究
  • 批准号:
    11174087
  • 项目类别:
    面上项目
  • 资助金额:
    70.0万元
  • 批准年份:
    2011
  • 负责人:
    谢菠荪
  • 依托单位: