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在寒冷中存活:北极弹尾虫Megaphorura arctica(图尔贝里)昆虫抗冻脱水的分子分析

Surviving the cold: molecular analyses of insect cryoprotective dehydration in the Arctic springtail Megaphorura arctica (Tullberg).

作者信息

Clark Melody S, Thorne Michael As, Purać Jelena, Burns Gavin, Hillyard Guy, Popović Zeljko D, Grubor-Lajsić Gordana, Worland M Roger

机构信息

British Antarctic Survey, Natural Environment Research Council, High Cross, Madingley Road, Cambridge, UK.

出版信息

BMC Genomics. 2009 Jul 21;10:328. doi: 10.1186/1471-2164-10-328.

Abstract

BACKGROUND

Insects provide tractable models for enhancing our understanding of the physiological and cellular processes that enable survival at extreme low temperatures. They possess three main strategies to survive the cold: freeze tolerance, freeze avoidance or cryoprotective dehydration, of which the latter method is exploited by our model species, the Arctic springtail Megaphorura arctica, formerly Onychiurus arcticus (Tullberg 1876). The physiological mechanisms underlying cryoprotective dehydration have been well characterised in M. arctica and to date this process has been described in only a few other species: the Antarctic nematode Panagrolaimus davidi, an enchytraied worm, the larvae of the Antarctic midge Belgica antarctica and the cocoons of the earthworm Dendrobaena octaedra. There are no in-depth molecular studies on the underlying cold survival mechanisms in any species.

RESULTS

A cDNA microarray was generated using 6,912 M. arctica clones printed in duplicate. Analysis of clones up-regulated during dehydration procedures (using both cold- and salt-induced dehydration) has identified a number of significant cellular processes, namely the production and mobilisation of trehalose, protection of cellular systems via small heat shock proteins and tissue/cellular remodelling during the dehydration process. Energy production, initiation of protein translation and cell division, plus potential tissue repair processes dominate genes identified during recovery. Heat map analysis identified a duplication of the trehalose-6-phosphate synthase (TPS) gene in M. arctica and also 53 clones co-regulated with TPS, including a number of membrane associated and cell signalling proteins. Q-PCR on selected candidate genes has also contributed to our understanding with glutathione-S-transferase identified as the major antioxdidant enzyme protecting the cells during these stressful procedures, and a number of protein kinase signalling molecules involved in recovery.

CONCLUSION

Microarray analysis has proved to be a powerful technique for understanding the processes and genes involved in cryoprotective dehydration, beyond the few candidate genes identified in the current literature. Dehydration is associated with the mobilisation of trehalose, cell protection and tissue remodelling. Energy production, leading to protein production, and cell division characterise the recovery process. Novel membrane proteins, along with aquaporins and desaturases, have been identified as promising candidates for future functional analyses to better understand membrane remodelling during cellular dehydration.

摘要

背景

昆虫为增进我们对在极端低温下生存所涉及的生理和细胞过程的理解提供了易于处理的模型。它们拥有三种主要的耐寒策略:耐冻性、避冻性或抗冻脱水,我们的模式物种北极弹尾虫Megaphorura arctica(原Onychiurus arcticus,图尔贝里,1876年)采用的是后一种方法。抗冻脱水背后的生理机制在北极弹尾虫中已得到充分表征,迄今为止,仅在其他少数物种中描述过这一过程:南极线虫Panagrolaimus davidi、一种线蚓、南极蠓Belgica antarctica的幼虫以及蚯蚓Dendrobaena octaedra的茧。目前尚无对任何物种耐寒生存机制的深入分子研究。

结果

利用6912个北极弹尾虫克隆制备了一式两份打印的cDNA微阵列。对脱水过程(使用冷诱导脱水和盐诱导脱水)中上调的克隆进行分析,确定了许多重要的细胞过程,即海藻糖的产生和动员、通过小分子热休克蛋白保护细胞系统以及脱水过程中的组织/细胞重塑。能量产生、蛋白质翻译起始和细胞分裂,以及潜在的组织修复过程在恢复过程中所鉴定出的基因中占主导地位。热图分析确定了北极弹尾虫中海藻糖-6-磷酸合酶(TPS)基因的一个重复,以及53个与TPS共同调控的克隆,包括一些膜相关蛋白和细胞信号蛋白。对选定候选基因进行的定量PCR也有助于我们的理解,谷胱甘肽-S-转移酶被确定为在这些应激过程中保护细胞的主要抗氧化酶,还有一些参与恢复的蛋白激酶信号分子。

结论

微阵列分析已被证明是一种强大的技术,可用于理解抗冻脱水所涉及的过程和基因,这超出了当前文献中所确定的少数候选基因。脱水与海藻糖的动员、细胞保护和组织重塑有关。能量产生导致蛋白质产生,细胞分裂是恢复过程的特征。新型膜蛋白以及水通道蛋白和去饱和酶已被确定为未来功能分析的有希望的候选对象,以便更好地理解细胞脱水过程中的膜重塑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e568/2726227/7b1397ef4b88/1471-2164-10-328-1.jpg

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