Oltrabella Francesca, Melgoza Adam, Nguyen Brian, Guo Su
Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, California, 94158-2811, USA.
Pharmaceutical Sciences and Pharmacogenomics Graduate Program, University of California, San Francisco, California, 94158-2811, USA.
Dev Growth Differ. 2017 May;59(4):194-210. doi: 10.1111/dgd.12351. Epub 2017 May 17.
The endocannabinoid system (eCBs), named after the plant Cannabis sativa, comprises cannabinoid receptors, endogenous ligands known as "endocannabinoids", and enzymes involved in the biosynthesis and degradation of these ligands, as well as putative transporters for these ligands. ECBs proteins and small molecules have been detected in early embryonic stages of many vertebrate models. As a result, cannabinoid receptors and endogenous as well as exogenous cannabinoids influence development and behavior in many vertebrate species. Understanding the precise mechanisms of action for the eCBs will provide an invaluable guide towards elucidation of vertebrate development and will also help delineate how developmental exposure to marijuana might impact health and cognitive/executive functioning in adulthood. Here we review the developmental roles of the eCBs in vertebrates, focusing our attention on the zebrafish model. Since little is known regarding the eCBs in zebrafish, we provide new data on the expression profiles of eCBs genes during development and in adult tissue types of this model organism. We also highlight exciting areas for future investigations, including the synaptic regulation of eCBs, its role in reward and addiction, and in nervous system development and plasticity.
内源性大麻素系统(eCBs)以植物大麻命名,由大麻素受体、被称为“内源性大麻素”的内源性配体、参与这些配体生物合成和降解的酶以及这些配体的假定转运体组成。在许多脊椎动物模型的早期胚胎阶段已检测到内源性大麻素系统的蛋白质和小分子。因此,大麻素受体以及内源性和外源性大麻素会影响许多脊椎动物物种的发育和行为。了解内源性大麻素系统的确切作用机制将为阐明脊椎动物发育提供宝贵的指导,也有助于阐明发育期接触大麻如何影响成年后的健康以及认知/执行功能。在此,我们综述内源性大麻素系统在脊椎动物中的发育作用,重点关注斑马鱼模型。由于对斑马鱼体内的内源性大麻素系统了解甚少,我们提供了关于该模式生物发育过程中和成体组织类型中内源性大麻素系统基因表达谱的新数据。我们还强调了未来研究的令人兴奋的领域,包括内源性大麻素系统的突触调节、其在奖赏和成瘾中的作用以及在神经系统发育和可塑性方面的作用。