斑马鱼侧线毛细胞的功能发育和再生。

Functional development and regeneration of hair cells in the zebrafish lateral line.

机构信息

Department of Biomedical Science, University of Sheffield, Sheffield, UK.

Sheffield Neuroscience Institute, University of Sheffield, Sheffield, UK.

出版信息

J Physiol. 2021 Aug;599(16):3913-3936. doi: 10.1113/JP281522. Epub 2021 Jul 9.

Abstract

KEY POINTS

We investigated hair-cell regeneration in the zebrafish lateral line following the application of the ototoxic compound copper. In early-larval zebrafish (<10 days post-fertilisation), regenerated hair cells drive action potentials (APs) in the afferent neurons 24 h post-copper treatment (24 hpt). Full regeneration of the early-larval neuromasts, the organs containing the hair cells, requires ∼48 h due to the progressive addition of hair cells and synaptic refinement. In older larval zebrafish, regenerated hair cells are active and drive afferent APs by 48 hpt, which is comparable to larvae, but the functional recovery of their neuromasts requires >120 hpt. Afferent terminals within the regenerating neuromast appear to initially contact supporting cells, and their complete ablation prevents the timely reappearance of supporting cells and hair cells. We conclude that the regeneration of zebrafish neuromasts is slower after the initial developmental stages, and that the afferent input plays a key role in driving this process.

ABSTRACT

Hair cells are mechanosensory receptors responsible for transducing auditory and vestibular information into electrical signals, which are then transmitted with remarkable precision to afferent neurons. Different from mammals, the hair cells of lower vertebrates, including those present in the neuromasts of the zebrafish lateral line, regenerate following environmental or chemical insults. Here we investigate the time course of regeneration of hair cells in vivo using electrophysiology, two-photon imaging and immunostaining applied to wild-type and genetically encoded fluorescent indicator zebrafish lines. Functional hair cells drive spontaneous action potentials in the posterior lateral line afferent fibres, the frequency of which progressively increases over the first 10 days post-fertilisation (dpf). Higher firing-rate fibres are only observed from ∼6 dpf. Following copper treatment, newly formed hair cells become functional and are able to drive APs in the afferent fibres within 48 h in both early-larval (≤8 dpf) and late-larval (12-17 dpf) zebrafish. However, the complete functional regeneration of the entire neuromast is delayed in late-larval compared to early-larval zebrafish. We propose that while individual regenerating hair cells can rapidly become active, the acquisition of fully functional neuromasts progresses faster at early-larval stages, a time when hair cells are still under development. At both ages, the afferent terminals in the regenerating neuromast appear to make initial contact with supporting cells. The ablation of the lateral line afferent neurons prevents the timely regeneration of supporting cells and hair cells. These findings indicate that the afferent system is likely to facilitate or promote the neuromast regeneration process.

摘要

要点

我们研究了在应用耳毒性化合物铜后斑马鱼侧线的毛细胞再生。在早期幼虫(受精后<10 天)中,铜处理后 24 小时(24 hpt),再生的毛细胞在传入神经元中驱动动作电位(APs)。由于毛细胞的逐渐添加和突触细化,早期幼虫的神经嵴(包含毛细胞的器官)的完全再生需要约 48 小时。在较老的幼虫斑马鱼中,再生的毛细胞在 48 hpt 时活跃,并驱动传入的 APs,这与幼虫相当,但它们的神经嵴的功能恢复需要 >120 hpt。在再生的神经嵴内的传入末梢似乎最初与支持细胞接触,并且它们的完全消融防止了支持细胞和毛细胞的及时再现。我们得出结论,斑马鱼神经嵴的再生在初始发育阶段之后较慢,并且传入输入在驱动该过程中起着关键作用。

摘要

毛细胞是将听觉和前庭信息转导为电信号的机械感受器受体,然后以惊人的精度将其传递到传入神经元。与哺乳动物不同,包括斑马鱼侧线神经嵴中的那些在内的低等脊椎动物的毛细胞在环境或化学刺激后会再生。在这里,我们使用电生理学,双光子成像和免疫染色研究了体内毛细胞的再生时间过程,应用于野生型和基因编码荧光指示剂斑马鱼系。功能毛细胞在后部侧线传入纤维中驱动自发动作电位,其频率在受精后 10 天(dpf)内逐渐增加。从大约 6 dpf 开始仅观察到更高的发射率纤维。在铜处理后,新形成的毛细胞在早期幼虫(≤8 dpf)和晚期幼虫(12-17 dpf)斑马鱼中在 48 小时内变得功能活跃并能够驱动传入纤维中的 APs。然而,与早期幼虫相比,晚期幼虫的整个神经嵴的完全功能再生被延迟。我们提出,虽然单个再生的毛细胞可以快速变得活跃,但在早期幼虫阶段,整个神经嵴的获取功能更快,此时毛细胞仍在发育中。在这两个年龄段,再生神经嵴中的传入末梢似乎最初与支持细胞接触。侧线传入神经元的消融阻止了支持细胞和毛细胞的及时再生。这些发现表明传入系统可能促进或促进神经嵴的再生过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4586/7612129/b42e285b7ab7/EMS140583-f001.jpg

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