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海藻糖使秀丽隐杆线虫的 dauer 幼虫能够抵抗极端干燥。

Trehalose renders the dauer larva of Caenorhabditis elegans resistant to extreme desiccation.

机构信息

Max Planck Institute of Molecular Cell Biology and Genetics, Dresden 01307, Germany.

出版信息

Curr Biol. 2011 Aug 9;21(15):1331-6. doi: 10.1016/j.cub.2011.06.064. Epub 2011 Jul 21.

Abstract

Water is essential for life on Earth. In its absence, however, some organisms can interrupt their life cycle and temporarily enter an ametabolic state, known as anhydrobiosis [1]. It is assumed that sugars (in particular trehalose) are instrumental for survival under anhydrobiotic conditions [2]. However, the role of trehalose remained obscure because the corresponding evidence was purely correlative and based mostly on in vitro studies without any genetic manipulations of trehalose metabolism. In this study, we used C. elegans as a genetic model to investigate molecular mechanisms of anhydrobiosis. We show that the C. elegans dauer larva is a true anhydrobiote: under defined conditions it can survive even after losing 98% of its body water. This ability is correlated with a several fold increase in the amount of trehalose. Mutants unable to synthesize trehalose cannot survive even mild dehydration. Light and electron microscopy indicate that one of the major functions of trehalose is the preservation of membrane organization. Fourier-transform infrared spectroscopy of whole worms suggests that this is achieved by preserving homogeneous and compact packing of lipid acyl chains. By means of infrared spectroscopy, we can now distinguish a "dry, yet alive" larva from a "dry and dead" one.

摘要

水是地球上生命的必需品。然而,在没有水的情况下,一些生物体可以中断它们的生命周期并暂时进入无代谢状态,这种状态被称为休眠[1]。人们认为糖(特别是海藻糖)在休眠条件下对于生存是至关重要的[2]。然而,海藻糖的作用仍然不清楚,因为相应的证据纯粹是相关的,并且主要基于没有任何海藻糖代谢遗传操作的体外研究。在这项研究中,我们使用秀丽隐杆线虫作为遗传模型来研究休眠的分子机制。我们表明,秀丽隐杆线虫的 dauer 幼虫是一种真正的休眠生物:在特定条件下,即使失去 98%的身体水分,它也能存活。这种能力与海藻糖含量增加几倍相关。不能合成海藻糖的突变体甚至不能在轻度脱水的情况下存活。光镜和电镜表明,海藻糖的主要功能之一是保持膜组织的完整性。对整个线虫的傅里叶变换红外光谱分析表明,这是通过保持脂质酰链均匀紧凑的包装来实现的。通过红外光谱,我们现在可以将“干燥但存活”的幼虫与“干燥且死亡”的幼虫区分开来。

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