HSP70 is upregulated after heat but not freezing stress in the freeze-tolerant cricket Gryllus veletis.

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Victoria E Adams, Maranda L van Oirschot, Jantina Toxopeus
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Abstract

Heat shock proteins (HSPs) are well known to prevent and repair protein damage caused by various abiotic stressors, but their role in low temperature and freezing stress is not well-characterized in insects compared to other thermal challenges such as heat stress. Ice formation in and around cells is hypothesized to cause protein damage, yet many species of insects can survive freezing, suggesting HSPs may be an important mechanism in freeze tolerance. Here, we studied HSP70 in a freeze-tolerant cricket Gryllus veletis to better understand the role of HSPs in this phenomenon. We measured expression of one heat-inducible HSP70 isoform at the mRNA level (using RT-qPCR), as well as the relative abundance of total HSP70 protein (using semi-quantitative Western blotting), in five tissues from crickets exposed to a survivable heat treatment (2 h at 40 °C), a 6-week fall-like acclimation that induces freeze tolerance, and a survivable freezing treatment (1.5 h at -8 °C). While HSP70 expression was upregulated by heat at the mRNA or protein level in all tissues studied (fat body, Malphigian tubules, midgut, femur muscle, nervous system ganglia), no tissue exhibited HSP70 upregulation within 2-24 h following a survivable freezing stress. During fall-like acclimation to mild low temperatures, we only saw moderate upregulation of HSP70 at the protein level in muscle, and at the RNA level in fat body and nervous tissue. Although HSP70 is important for responding to a wide range of stressors, our work suggests that this chaperone may be less critical in the preparation for, and response to, moderate freezing stress.

众所周知,热休克蛋白(HSPs)可以预防和修复由各种非生物应激源引起的蛋白质损伤,但与热应激等其他热挑战相比,它们在低温和冷冻应激中的作用在昆虫中尚未得到很好的表征。据推测,细胞内部和周围的冰形成会导致蛋白质损伤,但许多昆虫物种可以在冷冻中存活,这表明热休克蛋白可能是耐寒性的重要机制。在这里,我们研究了耐冻蟋蟀Gryllus veletis中的HSP70,以更好地了解HSPs在这一现象中的作用。我们测量了一种热诱导型HSP70亚型在mRNA水平上的表达(使用RT-qPCR),以及总HSP70蛋白的相对丰度(使用半定量Western blotting),这些组织来自暴露于可存活的热处理(2 h, 40 °C), 6周的诱导抗冻的下降样驯化,以及可存活的冷冻处理(1.5 h, -8 °C)的蟋蟀。在所有研究组织(脂肪体、马氏小管、中肠、股骨肌、神经系统神经节)中,高温在mRNA或蛋白水平上上调了HSP70的表达,但在存活的冷冻应激后2-24 h内,没有组织表现出HSP70的上调。在轻度低温的类秋季驯化过程中,我们只观察到肌肉蛋白水平、脂肪体和神经组织RNA水平的HSP70适度上调。尽管HSP70对于应对多种应激源很重要,但我们的研究表明,这种伴侣蛋白在准备和应对中度冰冻应激时可能不那么重要。
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来源期刊
CiteScore
5.00
自引率
4.30%
发文量
155
审稿时长
3 months
期刊介绍: Part A: Molecular & Integrative Physiology of Comparative Biochemistry and Physiology. This journal covers molecular, cellular, integrative, and ecological physiology. Topics include bioenergetics, circulation, development, excretion, ion regulation, endocrinology, neurobiology, nutrition, respiration, and thermal biology. Study on regulatory mechanisms at any level of organization such as signal transduction and cellular interaction and control of behavior are also published.
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