黑腹果蝇幼虫中 dTps1 的下调证实了干燥后三卤糖参与氧化还原调节。

Cell Stress and Chaperones Pub Date : 2016-03-01 Epub Date: 2015-11-17 DOI:10.1007/s12192-015-0658-0
Leena Thorat, Krishna-Priya Mani, Pradeep Thangaraj, Suvro Chatterjee, Bimalendu B Nath
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摘要

作为一种应对环境缺水的生存策略,耐干燥生物通常以其招募应激保护性生物大分子(如三卤糖)的能力而闻名。我们以前曾报道过三卤糖在黑腹果蝇幼虫耐干燥性中的关键作用。树胶糖是一种用途广泛的分子,主要作为昆虫的能量来源,同时也是一种应激保护剂。虽然最近的一些报道揭示了三卤糖在酵母和植物中清除活性氧的非常规作用,但在动物中这方面还没有得到太多关注。我们研究了干燥诱导的活性氧在黑腹蝇幼虫体内的生成状况,以及曲哈洛糖在改善其有害后果方面的可能参与。昆虫三卤糖的合成由 6-磷酸三卤糖合酶 1(TPS1)控制。利用 da-GAL4 驱动的 dTps1-RNAi 转基因的普遍表达,我们产生了 dTps1 下调的果蝇幼虫,它们体内的 dTps1 转录本水平很低。这导致幼虫无法合成三卤糖,从而使我们得以阐明三卤糖在调节干燥反应性氧化还原平衡中的重要作用。此外,分子遗传学研究、生化试验、电子自旋共振分析和一种简单、非侵入性的幼虫整体活体成像方法的结果表明,三卤糖与超氧化物歧化酶(SOD)共同参与了黑腹蝇体内氧化还原状态的维持。
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Downregulation of dTps1 in Drosophila melanogaster larvae confirms involvement of trehalose in redox regulation following desiccation.

As a survival strategy to environmental water deficits, desiccation-tolerant organisms are commonly known for their ability to recruit stress-protective biomolecules such as trehalose. We have previously reported the pivotal role of trehalose in larval desiccation tolerance in Drosophila melanogaster. Trehalose has emerged as a versatile molecule, serving mainly as energy source in insects and also being a stress protectant. While several recent reports have revealed the unconventional role of trehalose in scavenging reactive oxygen species in yeast and plants, this aspect has not received much attention in animals. We examined the status of desiccation-induced generation of reactive oxygen species in D. melanogaster larvae and the possible involvement of trehalose in ameliorating the harmful consequences thereof. Insect trehalose synthesis is governed by the enzyme trehalose 6-phosphate synthase 1 (TPS1). Using the ubiquitous da-GAL4-driven expression of the dTps1-RNAi transgene, we generated dTps1-downregulated Drosophila larvae possessing depleted levels of dTps1 transcripts. This resulted in the inability of the larvae for trehalose synthesis, thereby allowing us to elucidate the significance of trehalose in the regulation of desiccation-responsive redox homeostasis. Furthermore, the results from molecular genetics studies, biochemical assays, electron spin resonance analyses and a simple, non-invasive method of whole larval live imaging suggested that trehalose in collaboration with superoxide dismutase (SOD) is involved in the maintenance of redox state in D. melanogaster.

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