长期暴露于地塞米松可促进斑马鱼侧线再生,但会破坏线粒体平衡和毛细胞功能

IF 2.4 3区 医学 Q3 NEUROSCIENCES Jaro-Journal of the Association for Research in Otolaryngology Pub Date : 2022-12-01 Epub Date: 2022-10-19 DOI:10.1007/s10162-022-00875-x
Allison L Saettele, Hiu-Tung C Wong, Katie S Kindt, Mark E Warchol, Lavinia Sheets
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引用次数: 0

摘要

合成糖皮质激素地塞米松常用于治疗内耳疾病。以前在幼年斑马鱼身上进行的研究表明,地塞米松治疗可促进毛细胞再生,但地塞米松也被证明可抑制病变后周围神经的再生。因此,我们利用斑马鱼模型来确定地塞米松治疗对侧线毛细胞和初级传入神经的影响。为了探索地塞米松在再生方面的作用,我们使用硫酸铜(CuSO4)诱导毛细胞缺失和神经末梢回缩,然后让动物在地塞米松中恢复 48 小时。重要的是,我们发现在地塞米松存在的情况下,神经母细胞下方的传入过程也能再生,并形成适当数量的突触,这表明毛细胞的神经支配并没有受到地塞米松的抑制。除了再生,我们还探讨了长期暴露于地塞米松对侧线稳态和功能的影响。地塞米松处理后,我们观察到神经母细胞毛细胞和支持细胞的线粒体膜电位超极化(ΔΨm)。暴露于地塞米松的毛细胞也更容易受到新霉素诱导的细胞死亡的影响。在流体喷射的饱和刺激下,通过毛细胞机械传导通道的钙离子流入显著减少,但突触前的钙离子流入保持不变。这些观察结果综合表明,地塞米松能增强侧线神经细胞中毛细胞的再生能力,但也会破坏线粒体的稳态,使毛细胞更容易受到耳毒性损伤,并可能影响毛细胞的功能。
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Prolonged Dexamethasone Exposure Enhances Zebrafish Lateral-Line Regeneration But Disrupts Mitochondrial Homeostasis and Hair Cell Function.

The synthetic glucocorticoid dexamethasone is commonly used to treat inner ear disorders. Previous work in larval zebrafish has shown that dexamethasone treatment enhances hair cell regeneration, yet dexamethasone has also been shown to inhibit regeneration of peripheral nerves after lesion. We therefore used the zebrafish model to determine the impact of dexamethasone treatment on lateral-line hair cells and primary afferents. To explore dexamethasone in the context of regeneration, we used copper sulfate (CuSO4) to induce hair cell loss and retraction of nerve terminals, and then allowed animals to recover in dexamethasone for 48 h. Consistent with previous work, we observed significantly more regenerated hair cells in dexamethasone-treated larvae. Importantly, we found that the afferent processes beneath neuromasts also regenerated in the presence of dexamethasone and formed an appropriate number of synapses, indicating that innervation of hair cells was not inhibited by dexamethasone. In addition to regeneration, we also explored the effects of prolonged dexamethasone exposure on lateral-line homeostasis and function. Following dexamethasone treatment, we observed hyperpolarized mitochondrial membrane potentials (ΔΨm) in neuromast hair cells and supporting cells. Hair cells exposed to dexamethasone were also more vulnerable to neomycin-induced cell death. In response to a fluid-jet delivered saturating stimulus, calcium influx through hair cell mechanotransduction channels was significantly reduced, yet presynaptic calcium influx was unchanged. Cumulatively, these observations indicate that dexamethasone enhances hair cell regeneration in lateral-line neuromasts, yet also disrupts mitochondrial homeostasis, making hair cells more vulnerable to ototoxic insults and possibly impacting hair cell function.

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来源期刊
CiteScore
4.10
自引率
12.50%
发文量
57
审稿时长
6-12 weeks
期刊介绍: JARO is a peer-reviewed journal that publishes research findings from disciplines related to otolaryngology and communications sciences, including hearing, balance, speech and voice. JARO welcomes submissions describing experimental research that investigates the mechanisms underlying problems of basic and/or clinical significance. Authors are encouraged to familiarize themselves with the kinds of papers carried by JARO by looking at past issues. Clinical case studies and pharmaceutical screens are not likely to be considered unless they reveal underlying mechanisms. Methods papers are not encouraged unless they include significant new findings as well. Reviews will be published at the discretion of the editorial board; consult the editor-in-chief before submitting.
期刊最新文献
Evaluating the Correlation Between Stimulus Frequency Otoacoustic Emission Group Delays and Tuning Sharpness in a Cochlear Model. Tuning and Timing of Organ of Corti Vibrations at the Apex of the Intact Chinchilla Cochlea. Vital Dye Uptake of YO-PRO-1 and DASPEI Depends Upon Mechanoelectrical Transduction Function in Zebrafish Hair Cells. Investigating the Effect of Blurring and Focusing Current in Cochlear Implant Users with the Panoramic ECAP Method. Eric Daniel Young.
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