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斑马鱼组织特异性离子细胞分化的环境和分子控制。

Environmental and molecular control of tissue-specific ionocyte differentiation in zebrafish.

机构信息

Stowers Institute for Medical Research, Kansas City, MO 64110, USA.

出版信息

Development. 2024 Oct 15;151(20). doi: 10.1242/dev.202809. Epub 2024 Oct 22.

Abstract

Organisms cope with environmental fluctuations and maintain fitness in part via reversible phenotypic changes (acclimation). Aquatic animals are subject to dramatic seasonal fluctuations in water salinity, which affect osmolarity of their cells and consequently cellular function. Mechanosensory lateral line hair cells detect water motion for swimming behavior and are especially susceptible to salinity changes due to their direct contact with the environment. To maintain hair cell function when salinity decreases, neuromast (Nm)-associated ionocytes differentiate and invade lateral line neuromasts. The signals that trigger the adaptive differentiation of Nm ionocytes are unknown. We demonstrate that new Nm ionocytes are rapidly specified and selectively triggered to proliferate by low Ca2+ and Na+/Cl- levels. We further show that Nm ionocyte recruitment and induction is affected by hair cell activity. Once specified, Nm ionocyte differentiation and survival are associated with sequential activation of different Notch pathway components, a process different from other tissue-specific ionocytes. In summary, we show how environmental changes activate a signaling cascade that leads to physiological adaptation. This may prove essential for survival not only in seasonal changing environments but also in changing climates.

摘要

生物通过可逆的表型变化(适应)来应对环境波动并维持适应性。水生动物会受到水盐度剧烈季节性波动的影响,这会影响其细胞的渗透压,从而影响细胞功能。机械感受侧线毛细胞检测水的运动以进行游泳行为,并且由于它们与环境直接接触,因此特别容易受到盐度变化的影响。为了在盐度降低时维持毛细胞功能,神经嵴(Nm)相关的离子细胞会分化并侵入侧线神经嵴。触发 Nm 离子细胞适应性分化的信号尚不清楚。我们证明,低 Ca2+和 Na+/Cl-水平可快速特异性指定并选择性触发新的 Nm 离子细胞增殖。我们进一步表明,毛细胞的活动会影响 Nm 离子细胞的募集和诱导。一旦被指定,Nm 离子细胞的分化和存活与 Notch 途径不同组成部分的顺序激活相关,这一过程与其他组织特异性离子细胞不同。总之,我们展示了环境变化如何激活信号级联反应,从而导致生理适应。这对于在季节性变化的环境中以及在气候变化中生存可能至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0187/11528218/2ce8b96c7858/develop-151-202809-g1.jpg

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