Barn owls specialized sound-driven behavior: Lessons in optimal processing and coding by the auditory system

IF 2.5 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY Hearing Research Pub Date : 2024-01-15 DOI:10.1016/j.heares.2024.108952
Andrea Bae, Jose L Peña
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Abstract

The barn owl, a nocturnal raptor with remarkably efficient prey-capturing abilities, has been one of the initial animal models used for research of brain mechanisms underlying sound localization. Some seminal findings made from their specialized sound localizing auditory system include discoveries of a midbrain map of auditory space, mechanisms towards spatial cue detection underlying sound-driven orienting behavior, and circuit level changes supporting development and experience-dependent plasticity. These findings have explained properties of vital hearing functions and inspired theories in spatial hearing that extend across diverse animal species, thereby cementing the barn owl's legacy as a powerful experimental system for elucidating fundamental brain mechanisms. This concise review will provide an overview of the insights from which the barn owl model system has exemplified the strength of investigating diversity and similarity of brain mechanisms across species. First, we discuss some of the key findings in the specialized system of the barn owl that elucidated brain mechanisms toward detection of auditory cues for spatial hearing. Then we examine how the barn owl has validated mathematical computations and theories underlying optimal hearing across species. And lastly, we conclude with how the barn owl has advanced investigations toward developmental and experience dependent plasticity in sound localization, as well as avenues for future research investigations towards bridging commonalities across species. Analogous to the informative power of Astrophysics for understanding nature through diverse exploration of planets, stars, and galaxies across the universe, miscellaneous research across different animal species pursues broad understanding of natural brain mechanisms and behavior.

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谷仓鸮专门的声音驱动行为:听觉系统优化处理和编码的启示
仓鸮是一种夜间活动的猛禽,具有高效捕捉猎物的能力,是研究声音定位大脑机制的最初动物模型之一。从它们专门的声音定位听觉系统中获得的一些开创性发现包括:发现了听觉空间的中脑地图、声音驱动定向行为的空间线索检测机制,以及支持发育和经验可塑性的电路水平变化。这些发现解释了重要听觉功能的特性,并启发了空间听觉理论,从而使仓鸮成为阐明大脑基本机制的强大实验系统。这篇简明综述将概述谷仓鸮模型系统在研究不同物种大脑机制的多样性和相似性方面的优势。首先,我们将讨论在仓鸮特化系统中发现的一些关键发现,这些发现阐明了仓鸮检测空间听觉线索的大脑机制。然后,我们将探讨仓鸮是如何验证跨物种最佳听力的数学计算和基础理论的。最后,我们总结了仓鸮如何推动了声音定位的发育和经验可塑性研究,以及未来弥合不同物种共性的研究途径。天体物理学通过对宇宙中的行星、恒星和星系进行多样化的探索来了解自然界的信息力量,与此类似,不同动物物种之间的杂项研究也在追求对自然大脑机制和行为的广泛了解。
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来源期刊
Hearing Research
Hearing Research 医学-耳鼻喉科学
CiteScore
5.30
自引率
14.30%
发文量
163
审稿时长
75 days
期刊介绍: The aim of the journal is to provide a forum for papers concerned with basic peripheral and central auditory mechanisms. Emphasis is on experimental and clinical studies, but theoretical and methodological papers will also be considered. The journal publishes original research papers, review and mini- review articles, rapid communications, method/protocol and perspective articles. Papers submitted should deal with auditory anatomy, physiology, psychophysics, imaging, modeling and behavioural studies in animals and humans, as well as hearing aids and cochlear implants. Papers dealing with the vestibular system are also considered for publication. Papers on comparative aspects of hearing and on effects of drugs and environmental contaminants on hearing function will also be considered. Clinical papers will be accepted when they contribute to the understanding of normal and pathological hearing functions.
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