Wada Hironori, Kawakami Koichi
Division of Molecular and Developmental Biology, National Institute of Genetics, 1111 Yata, Mishima, Shizuoka, 411-8540, Japan.
Dev Growth Differ. 2015 Feb;57(2):169-78. doi: 10.1111/dgd.12196. Epub 2015 Feb 19.
Many genes that play essential roles in organ growth have been identified across a range of organisms. However, the mechanisms by which growing organs can sense their sizes and stop growing when they reach their proper sizes remain poorly understood. The mechanosensory organs of the fish lateral line system (neuromasts) provide an ideal system to address this question for the following reasons. First, each superficial neuromast is composed of a small number of cells situated on the body surface, making it relatively easy to quantify organ size throughout development. Second, while the sensory cells of superficial neuromasts are continuously renewed, overall organ size is homeostatically maintained. Third, there is another type of neuromast showing an opposite mode of growth: that is, canal neuromasts increase in size in proportion to organism body size. Here, we review recent findings regarding the mechanisms that control organ size in the zebrafish lateral line.
在一系列生物体中,已经鉴定出许多在器官生长中起关键作用的基因。然而,关于生长中的器官如何感知其大小并在达到适当大小时停止生长的机制,我们仍然知之甚少。鱼类侧线系统的机械感觉器官(神经丘)为解决这个问题提供了一个理想的系统,原因如下。首先,每个表面神经丘由位于体表的少数细胞组成,这使得在整个发育过程中相对容易量化器官大小。其次,虽然表面神经丘的感觉细胞不断更新,但器官的整体大小却能保持稳态。第三,还有另一种类型的神经丘呈现相反的生长模式:即,管神经丘的大小与生物体的体型成比例增加。在这里,我们综述了关于斑马鱼侧线器官大小控制机制的最新研究结果。