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硬骨鱼中的瘦素,探寻瘦素生理学的起源。

Leptin in teleostean fish, towards the origins of leptin physiology.

作者信息

Gorissen Marnix, Flik Gert

机构信息

Department of Animal Physiology , Institute for Water and Wetland Research, Radboud University Nijmegen, Heyendaalseweg 135, 6525AJ, Nijmegen, The Netherlands.

Department of Animal Physiology , Institute for Water and Wetland Research, Radboud University Nijmegen, Heyendaalseweg 135, 6525AJ, Nijmegen, The Netherlands.

出版信息

J Chem Neuroanat. 2014 Nov;61-62:200-6. doi: 10.1016/j.jchemneu.2014.06.005. Epub 2014 Jun 27.

Abstract

Teleostean leptin was first cloned in 2005, more than a decade after the discovery of mammalian leptin. The reason for this delay lies in the very poor primary sequence conservation (∼13-25%) between mammalian and fish leptins. These low sequence conservations indicate a high degree of molecular evolvability and warrant a search for different and original functions of leptin in teleosts. Indeed, new and original insights are obtained because of the unique phylogenetic position of teleostean fish as the earliest vertebrates and because of their ectothermy, which means that teleosts are more flexible in changing their metabolism than mammals and leptin could play a role in this flexibility. Research during the last decade reveals that leptin is a truly pleiotropic hormone in fish and mammals alike, with functions among others in the regulation of food intake and body weight, development, but also in the regulation of the stress axis and acclimation processes to for instance low oxygen levels in the water. In this review, we provide an overview of the teleostean leptin work done in the last ten years, and demonstrate that the power of a comparative approach leads to new insights on the origins of leptin physiology.

摘要

硬骨鱼的瘦素于2005年首次被克隆,这比哺乳动物瘦素的发现晚了十多年。这种延迟的原因在于哺乳动物和鱼类瘦素之间极低的一级序列保守性(约13%-25%)。这些低序列保守性表明了高度的分子可进化性,并促使人们寻找硬骨鱼中瘦素不同的原始功能。事实上,由于硬骨鱼作为最早的脊椎动物所具有的独特系统发育位置,以及它们的变温特性,即硬骨鱼在改变新陈代谢方面比哺乳动物更灵活,瘦素可能在这种灵活性中发挥作用,从而获得了新的、独特的见解。过去十年的研究表明,瘦素在鱼类和哺乳动物中都是一种真正的多效性激素,其功能包括调节食物摄入和体重、发育,还包括调节应激轴以及对例如水中低氧水平等环境的适应过程。在这篇综述中,我们概述了过去十年中关于硬骨鱼瘦素的研究工作,并证明比较方法的作用能够带来关于瘦素生理学起源的新见解。

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