HcTRET1 is critical for epidermal chitin synthesis in Hyphantria cunea.

IF 2.3 2区 农林科学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Diankuan Liu, Chuanshan Zou, Shengyu Zhang, Ze Wang, Jinxin Yu, Yuyao Nan, Zixin Dong
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引用次数: 0

Abstract

In insects, trehalose is critical for growth and development, as well as environmental stress response, which is mainly transported by trehalose transporters (TRETs). Over nearly two decades, the physiological functions of TRETs in insect growth, development, reproduction and environmental stress response have been well elucidated. However, the role of TRETs in chitin synthesis remains not fully understood. Here, we identified the HcTRET1 gene from Hyphantria cunea, a major Lepidoptera pest in agriculture and forestry. The role of HcTRET1 in growth and development, especially in chitin synthesis, was discussed by dsRNA-mediated HcTRET1 knockdown. Bioassay showed that HcTRET1 knockdown did not affect larval growth, development and survival in H. cunea, but it significantly reduced the pupa formation rate. Additionally, HcTRET1 silencing increased trehalose levels in the fat body but decreased them in the hemolymph, suggesting HcTRET1 plays a key role in trehalose homeostasis. Moreover, HcTRET1 knockdown significantly downregulated the genes for chitin synthesis (HcGFAT, HcUAP and HcCHSA), resulting in a remarkable reduction of chitin content in the epidermis. Moreover, HcTRET1 knockdown significantly reduced the survival of H. cunea larvae at 42°C. Taken together, these results demonstrated that HcTRET1 played a critical role in larva-pupa transition, in vivo trehalose homeostasis, especially in epidermal chitin biosynthesis in H. cunea larvae. In parallel, its important physiological function in response to high-temperature stress has been verified as well. The findings expand our understanding of the physiological functions of TRET1 in insects, providing a new perspective for trehalose transporters to regulate chitin biosynthesis.

HcTRET1对加利福尼亚棘球绦虫表皮几丁质合成至关重要。
在昆虫中,海藻糖对生长发育和环境应激反应至关重要,海藻糖主要通过海藻糖转运体(tret)进行运输。近二十年来,tret在昆虫生长、发育、繁殖和环境胁迫反应中的生理功能得到了很好的阐明。然而,tret在几丁质合成中的作用尚不完全清楚。本研究从农业和林业中主要鳞翅目害虫加利福尼亚棘球蚴(Hyphantria cunea)中鉴定出HcTRET1基因。通过dsrna介导的HcTRET1敲低,讨论了HcTRET1在生长发育,特别是几丁质合成中的作用。生物测定结果表明,HcTRET1基因敲低不影响蠋蝽幼虫的生长发育和存活,但显著降低了成蛹率。此外,HcTRET1沉默增加了脂肪体中的海藻糖水平,但降低了血淋巴中的海藻糖水平,这表明HcTRET1在海藻糖稳态中起关键作用。此外,HcTRET1敲低显著下调了几丁质合成基因(hcfat、HcUAP和HcCHSA),导致表皮中几丁质含量显著降低。在42℃条件下,HcTRET1基因的敲低显著降低了美洲夜蛾幼虫的存活率。综上所述,这些结果表明HcTRET1在海蛾幼虫的幼虫-蛹转化、体内海藻糖稳态,特别是表皮几丁质生物合成中发挥了关键作用。同时,其在高温胁迫下的重要生理功能也得到了证实。这一发现扩大了我们对昆虫TRET1生理功能的认识,为海藻糖转运体调控几丁质生物合成提供了新的视角。
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来源期刊
Insect Molecular Biology
Insect Molecular Biology 生物-昆虫学
CiteScore
4.80
自引率
3.80%
发文量
68
审稿时长
6-12 weeks
期刊介绍: Insect Molecular Biology has been dedicated to providing researchers with the opportunity to publish high quality original research on topics broadly related to insect molecular biology since 1992. IMB is particularly interested in publishing research in insect genomics/genes and proteomics/proteins. This includes research related to: • insect gene structure • control of gene expression • localisation and function/activity of proteins • interactions of proteins and ligands/substrates • effect of mutations on gene/protein function • evolution of insect genes/genomes, especially where principles relevant to insects in general are established • molecular population genetics where data are used to identify genes (or regions of genomes) involved in specific adaptations • gene mapping using molecular tools • molecular interactions of insects with microorganisms including Wolbachia, symbionts and viruses or other pathogens transmitted by insects Papers can include large data sets e.g.from micro-array or proteomic experiments or analyses of genome sequences done in silico (subject to the data being placed in the context of hypothesis testing).
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