Laboratoire Matière et Systèmes Complexes, Université Paris Diderot/CNRS UMR 7057, Sorbonne Paris Cité, 10 rue Alice Domon et Léonie Duquet, 75013 Paris, France
Philos Trans R Soc Lond B Biol Sci. 2018 Sep 24;373(1759):20170322. doi: 10.1098/rstb.2017.0322.
Peristalsis enables transport of the food bolus in the gut. Here, I show by dynamic intra-cellular calcium imaging on living embryonic gut explants that the most primitive form of peristalsis that occurs in the embryo is the result of inter-cellular, gap-junction-dependent calcium waves that propagate in the circular smooth muscle layer. I show that the embryonic gut is an intrinsically mechanosensitive organ, as the slightest externally applied mechanical stimulus triggers contractile waves. This dynamic response is an embryonic precursor of the 'law of the intestine' (peristaltic reflex). I show how characteristic features of early peristalsis such as counter-propagating wave annihilation, mechanosensitivity and nucleation after wounding all result from known properties of calcium waves. I finally demonstrate that inter-cellular mechanical tension does not play a role in the propagation mechanism of gut contractile waves, unlike what has been recently shown for the embryonic heartbeat. Calcium waves are a ubiquitous dynamic signalling mechanism in biology: here I show that they are the foundation of digestive movements in the developing embryo.This article is part of the Theo Murphy meeting issue on 'Mechanics of development'.
蠕动使食物团在肠道中移动。在这里,我通过对活体胚胎肠道外植体的动态细胞内钙离子成像显示,胚胎中发生的最原始形式的蠕动是细胞间、缝隙连接依赖性钙离子波在环形平滑肌层中传播的结果。我表明,胚胎肠道是一种内在的机械敏感器官,因为最轻微的外部机械刺激都会引发收缩波。这种动态反应是“肠道法则”(蠕动反射)的胚胎前体。我展示了早期蠕动的特征如何,如反向传播波的湮灭、机械敏感性和损伤后的成核,所有这些都源于钙离子波的已知特性。最后,我证明细胞间机械张力在肠道收缩波的传播机制中不起作用,这与最近对胚胎心跳的研究结果不同。钙离子波是生物学中普遍存在的动态信号机制:在这里,我表明它们是发育中胚胎消化运动的基础。本文是关于“发育力学”的 Theo Murphy 会议议题的一部分。