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太空飞行引起的哺乳动物椭圆囊毛细胞内的突触修饰。

Spaceflight-induced synaptic modifications within hair cells of the mammalian utricle.

作者信息

Sultemeier David R, Choy Kristel R, Schweizer Felix E, Hoffman Larry F

机构信息

Department of Head & Neck Surgery, David Geffen School of Medicine, University of California, Los Angeles, California.

Department of Neurobiology, David Geffen School of Medicine, University of California, Los Angeles, California; and.

出版信息

J Neurophysiol. 2017 Jun 1;117(6):2163-2178. doi: 10.1152/jn.00240.2016. Epub 2017 Feb 22.

Abstract

Exposure to the microgravity conditions of spaceflight alleviates the load normally imposed by the Earth's gravitational field on the inner ear utricular epithelia. Previous ultrastructural investigations have shown that spaceflight induces an increase in synapse density within hair cells of the rat utricle. However, the utricle exhibits broad physiological heterogeneity across different epithelial regions, and it is unknown whether capabilities for synaptic plasticity generalize to hair cells across its topography. To achieve systematic and broader sampling of the epithelium than was previously conducted, we used immunohistochemistry and volumetric image analyses to quantify synapse distributions across representative utricular regions in specimens from mice exposed to spaceflight (a 15-day mission of the space shuttle Discovery). These measures were compared with similarly sampled Earth-bound controls. Following paraformaldehyde fixation and microdissection, immunohistochemistry was performed on intact specimens to label presynaptic ribbons (anti-CtBP2) and postsynaptic receptor complexes (anti-Shank1A). Synapses were identified as closely apposed pre- and postsynaptic puncta. Epithelia from horizontal semicircular canal cristae served as "within-specimen" controls, whereas utricles and cristae from Earth-bound cohorts served as experimental controls. We found that synapse densities decreased in the medial extrastriolae of microgravity specimens compared with experimental controls, whereas they were unchanged in the striolae and horizontal cristae from the two conditions. These data demonstrate that structural plasticity was topographically localized to the utricular region that encodes very low frequency and static changes in linear acceleration, and illuminates the remarkable capabilities of utricular hair cells for synaptic plasticity in adapting to novel gravitational environments. Spaceflight imposes a radically different sensory environment from that in which the inner ear utricle normally operates. We investigated synaptic modifications in utricles from mice flown aboard a space shuttle mission. Structural synaptic plasticity was detected in the medial extrastriola, a region associated with encoding static head position, as decreased synapse density. These results are remarkably congruent with a recent report of decreased utricular function in astronauts immediately after returning from the International Space Station.

摘要

暴露于太空飞行的微重力环境可减轻地球引力场通常施加在内耳椭圆囊上皮细胞上的负荷。先前的超微结构研究表明,太空飞行会导致大鼠椭圆囊毛细胞内突触密度增加。然而,椭圆囊在不同上皮区域表现出广泛的生理异质性,尚不清楚突触可塑性的能力是否普遍适用于其整个区域的毛细胞。为了比以前进行更系统、更广泛的上皮采样,我们使用免疫组织化学和体积图像分析来量化来自暴露于太空飞行(发现号航天飞机为期15天的任务)的小鼠标本中代表性椭圆囊区域的突触分布。将这些测量结果与同样采样的地面对照进行比较。在多聚甲醛固定和显微解剖后,对完整标本进行免疫组织化学,以标记突触前带状物(抗CtBP2)和突触后受体复合物(抗Shank1A)。突触被识别为紧密相邻的突触前和突触后小点。水平半规管嵴的上皮用作“标本内”对照,而地面组的椭圆囊和嵴用作实验对照。我们发现,与实验对照相比,微重力标本的外侧中区突触密度降低,而在两种条件下的纹状区和水平嵴中突触密度没有变化。这些数据表明,结构可塑性在地形上局限于编码极低频率和线性加速度静态变化的椭圆囊区域,并揭示了椭圆囊毛细胞在适应新引力环境时突触可塑性的显著能力。太空飞行带来的感觉环境与内耳椭圆囊正常运作的环境截然不同。我们研究了搭乘航天飞机任务飞行的小鼠椭圆囊中的突触变化。在内侧外侧区检测到结构突触可塑性,该区域与编码静态头部位置有关,表现为突触密度降低。这些结果与最近一份关于宇航员从国际空间站返回后立即出现椭圆囊功能下降的报告非常一致。

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