两种喉回声定位蝙蝠的耳蜗细胞图谱——恒频蝙蝠适应性神经生理的新证据。

IF 5.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xue Wang, Mingyue Bao, Hui Wang, Ruyi Sun, Wentao Dai, Keping Sun, Yue Zhu, Yingting Pu, Yujia Chu, Xintong Li, Tianhui Wang, Minjie Zhang, Aiqing Lin, Jiqian Li, Jiang Feng
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引用次数: 0

摘要

蝙蝠进化出了高度适应的听觉机制,这与生态专门化有关。然而,关于回声定位蝙蝠高频听力的神经生理和细胞基础的知识是分散的。本研究采用10x Genomics单核RNA测序方法,对恒频蝙蝠(Rhinolophus ferrumequinum)和调频蝙蝠(Myotis pilosus)的耳蜗细胞图谱进行分析。在这两种蝙蝠中,耳蜗细胞类型的比例,特别是神经细胞的比例存在差异。先前,与FM蝙蝠相比,CF耳蜗中上调的基因被发现主要与神经活动有关。在定位到耳蜗细胞图谱后,我们发现上调的基因来自神经细胞、侧壁细胞和神经感觉上皮细胞。通过跨物种单细胞转录组学分析,发现了铁耳鼠耳蜗中一类特异性神经元及其相关功能。此外,还发现了铁耳耳蜗从胶质细胞向神经元细胞分化的分子证据。总体而言,本研究发现了构成不同回声定位类型蝙蝠神经解剖学进化动力学的特定细胞分子特性,为回声定位蝙蝠高频听力提供了新的分子证据,促进了生态适应与进化的相关研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cochlear Cell Atlas of Two Laryngeal Echolocating Bats-New Evidence for the Adaptive Nervous Physiology in Constant Frequency Bat.

Bats have evolved highly adapted auditory mechanisms associated with ecological specialisation. However, there is scattered knowledge about the neurophysiological and cellular basis underlying high-frequency hearing in echolocating bats. Herein, the total cochlear cell atlas of Rhinolophus ferrumequinum (constant frequency (CF) bat) and Myotis pilosus (frequency modulated (FM) bat) was conducted using the 10x Genomics single-nucleus RNA sequencing method. Differences in the proportion of cochlear cell types, especially for the neural cells, were detected between these two bat species. Previously, genes upregulated in the cochlea of CF compared with FM bats, were found to be mostly related to nervous activities. After mapping to the cochlear cell atlas, we found that the upregulated genes were from neural cells, lateral wall cells and neurosensory epithelium cells. A class of specific neurons and associated functions was detected in the cochlea of R. ferrumequinum, revealed by cross-species single-cell transcriptomic analyses. Furthermore, molecular evidence for the differentiation from glial cells to neuronal cells was also uncovered in the cochlea of R. ferrumequinum. Overall, this study identified specific cellular molecular properties that constitute the neuroanatomical evolutionary dynamics underlying distinct echolocating types of bats and provided new molecular evidence for high-frequency hearing of echolocating bats, promoting related studies about ecological adaptation and evolution.

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来源期刊
Molecular Ecology Resources
Molecular Ecology Resources 生物-进化生物学
CiteScore
15.60
自引率
5.20%
发文量
170
审稿时长
3 months
期刊介绍: Molecular Ecology Resources promotes the creation of comprehensive resources for the scientific community, encompassing computer programs, statistical and molecular advancements, and a diverse array of molecular tools. Serving as a conduit for disseminating these resources, the journal targets a broad audience of researchers in the fields of evolution, ecology, and conservation. Articles in Molecular Ecology Resources are crafted to support investigations tackling significant questions within these disciplines. In addition to original resource articles, Molecular Ecology Resources features Reviews, Opinions, and Comments relevant to the field. The journal also periodically releases Special Issues focusing on resource development within specific areas.
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