Shodo Ryusuke, Hayatsu Manabu, Koga Daisuke, Horii Arata, Ushiki Tatsuo
Division of Microscopic Anatomy, Niigata University Graduate School of Medical and Dental Sciences.
Department of Otolaryngology Head and Neck Surgery, Niigata University Graduate School of Medical and Dental Sciences.
Biomed Res. 2017;38(4):239-248. doi: 10.2220/biomedres.38.239.
In the cochlea, a high K environment in the endolymph is essential for the maintenance of normal hearing function, and the transport of K ions through gap junctions of the cochlear epithelium is thought to play an important role in endolymphatic homeostasis. The aim of the present study was to demonstrate the three-dimensional (3D) ultrastructure of spiral ligament root cells and interdental cells, which are located at both ends of the gap junction system of the cochlea epithelium. Serial semi-thin sections of plastic-embedded rat cochlea were mounted on glass slides, stained with uranyl acetate and lead citrate, and observed by scanning electron microscopy (SEM) using the backscattered electron (BSE) mode. 3D reconstruction of BSE images of serial sections revealed that the root cells were linked together to form a branched structure like an elaborate "tree root" in the spiral ligament. The interdental cells were also connected to each other, forming a comb-shaped cellular network with a number of cellular strands in the spiral limbus. Furthermore, TEM studies of ultra-thin sections revealed the rich presence of gap junctions in both root cells and interdental cells. These findings suggest the possibility that both root cells and interdental cells contribute to K circulation as the end portion of the epithelial cell gap junction system of the cochlea.
在耳蜗中,内淋巴中的高钾环境对于维持正常听力功能至关重要,钾离子通过耳蜗上皮缝隙连接的转运被认为在内淋巴稳态中发挥重要作用。本研究的目的是展示螺旋韧带根细胞和齿间细胞的三维(3D)超微结构,它们位于耳蜗上皮缝隙连接系统的两端。将塑料包埋的大鼠耳蜗连续半薄切片安装在载玻片上,用醋酸铀和柠檬酸铅染色,并使用背散射电子(BSE)模式通过扫描电子显微镜(SEM)观察。连续切片的BSE图像的3D重建显示,根细胞连接在一起形成一种分支结构,类似于螺旋韧带中精心构建的“树根”。齿间细胞也相互连接,在螺旋缘形成一个具有许多细胞链的梳状细胞网络。此外,超薄切片的透射电子显微镜(TEM)研究显示,根细胞和齿间细胞中都大量存在缝隙连接。这些发现表明,根细胞和齿间细胞作为耳蜗上皮细胞缝隙连接系统的末端部分,都有可能参与钾循环。