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高通量质谱分析揭示了氨基葡萄糖在增强水熊虫脱水应激后恢复中的作用。

High-throughput mass spectrometry analysis revealed a role for glucosamine in potentiating recovery following desiccation stress in Chironomus.

机构信息

Stress Biology Research Laboratory, Department of Zoology, Savitribai Phule Pune University, Pune, 411007, India.

Department of Biotechnology, Savitribai Phule Pune University, Pune, 411007, India.

出版信息

Sci Rep. 2017 Jun 16;7(1):3659. doi: 10.1038/s41598-017-03572-5.

Abstract

Desiccation tolerance is an essential survival trait, especially in tropical aquatic organisms that are vulnerable to severe challenges posed by hydroperiodicity patterns in their habitats, characterized by dehydration-rehydration cycles. Here, we report a novel role for glucosamine as a desiccation stress-responsive metabolite in the underexplored tropical aquatic midge, Chironomus ramosus. Using high- throughput liquid chromatography quadrupole time-of-flight mass spectrometry (LC-QToF-MS) analysis, biochemical assays and gene expression studies, we confirmed that glucosamine was essential during the recovery phase in C. ramosus larvae. Additionally, we demonstrated that trehalose, a known stress-protectant was crucial during desiccation but did not offer any advantage to the larvae during recovery. Based on our findings, we emphasise on the collaborative interplay of glucosamine and trehalose in conferring overall resilience to desiccation stress and propose the involvement of the trehalose-chitin metabolic interface in insects as one of the stress-management strategies to potentiate recovery post desiccation through recruitment of glucosamine.

摘要

耐旱性是一种重要的生存特征,特别是在热带水生生物中,它们容易受到栖息地水期模式带来的严重挑战,这些模式的特点是脱水-复水循环。在这里,我们报告了氨基葡萄糖在热带水生摇蚊 Chironomus ramosus 中作为一种干燥胁迫反应代谢物的新作用。使用高通量液相色谱四极杆飞行时间质谱 (LC-QToF-MS) 分析、生化测定和基因表达研究,我们证实了氨基葡萄糖在 C. ramosus 幼虫的恢复阶段是必不可少的。此外,我们还证明了海藻糖,一种已知的应激保护剂,在干燥过程中至关重要,但在恢复过程中对幼虫没有任何优势。基于我们的发现,我们强调了氨基葡萄糖和海藻糖在赋予干燥胁迫整体恢复力方面的协同作用,并提出了海藻糖-几丁质代谢界面在昆虫中的参与是通过招募氨基葡萄糖增强干燥后恢复的一种应激管理策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c17/5473918/7213b58e0ecc/41598_2017_3572_Fig1_HTML.jpg

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