In the battle of survival: transcriptome analysis of hypopharyngeal gland of the Apis mellifera under temperature-stress.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2025-02-17 DOI:10.1186/s12864-025-11322-5
Abdulkadir Yusif Maigoro, Jeong Hyeon Lee, Yumi Yun, Sujin Lee, Hyung Wook Kwon
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Abstract

Background: Temperature is one of the essential abiotic factors required for honey bee survival and pollination. Apart from its role as a major contributor to colony collapse disorder (CCD), it also affects honey bee physiology and behavior. Temperature-stress induces differential expression of genes related to protein synthesis and metabolic regulation, correlating with impaired gland function. This phenomenon has been confirmed in mandibular glands (MGs), but not in Hypopharyngeal glands (HGs), potentially affecting larval nutrition. RNA-seq analysis was performed using HGs tissue at low (23 °C), regular (26 °C), and high (29 °C) ambient temperatures. This study aims to decode molecular signatures and the pathways of the HGs tissue in response to temperature-stress and the rapid genetic changes that impact not only royal jelly (RJ) production potential but also other biological functions related to HGs and beyond.

Results: From the analyzed RNA-seq data, 1,465 significantly differentially expressed genes (DEGs) were identified across all the temperature groups. Eight genes (APD-1, LOC100577569, LOC100577883, LOC113218757, LOC408769, LOC409318, LOC412162, OBP18) were commonly expressed in all groups, while 415 (28.3%) of the total genes were exclusively expressed under temperature-stress. The DEGs were categorized into 14 functional groups and significantly enriched in response to external stimuli, response to abiotic stimuli, and protein processing in the endoplasmic reticulum (ER). Pathway analysis of exclusively temperature-stressed DEGs revealed that these genes promote ECM-receptor interaction and fatty acid metabolism while reducing protein processing in the ER, which is related to royal jelly (RJ) production and overall nutrition. Although heat-shock protein 90 and gustatory receptor 10 serve as markers for stress and hypopharyngeal glands (HGs) development respectively, their expression varies under temperature-stress conditions.

Conclusions: We conclude that with the recent effects of climate change and its contributing factors, honey bee pollination, and reproduction activity is on the verge of halting or experiencing a detrimental decline. Considering the impact of temperature-stress on the expression of the nutritional marker gene (GR10), silencing GR10 in HGs tissue could provide valuable insights into its significance in nutritional performance, survival, and beyond. Finally, a broader temperature range in future experiments could help derive more definitive conclusion.

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在生存之战中:温度胁迫下蜜蜂下咽腺转录组分析。
背景:温度是蜜蜂生存和授粉的重要非生物因子之一。除了作为蜂群衰竭失调(CCD)的主要因素外,它还影响蜜蜂的生理和行为。温度胁迫诱导蛋白质合成和代谢调节相关基因的差异表达,与腺体功能受损相关。这种现象已在下颌腺(mg)中得到证实,但在下咽腺(HGs)中尚未得到证实,这可能会影响幼虫的营养。在低(23°C)、常规(26°C)和高(29°C)环境温度下使用hg组织进行RNA-seq分析。本研究旨在解码HGs组织对温度胁迫和快速遗传变化的响应的分子特征和途径,这些变化不仅影响蜂王浆(RJ)的生产潜力,还影响与HGs相关的其他生物学功能。结果:从分析的RNA-seq数据中,在所有温度组中鉴定出1,465个显著差异表达基因(deg)。8个基因(APD-1、LOC100577569、LOC100577883、LOC113218757、LOC408769、LOC409318、LOC412162、OBP18)在所有组中均有表达,415个基因(28.3%)在温度胁迫下均有表达。deg被分为14个功能群,在对外界刺激的反应、对非生物刺激的反应和内质网(ER)的蛋白质加工中显著富集。对温度胁迫下deg的通路分析表明,这些基因促进ecm受体相互作用和脂肪酸代谢,同时减少内质网中蛋白质加工,这与蜂王浆(RJ)的产生和整体营养有关。虽然热休克蛋白90和味觉受体10分别作为应激和下咽腺(HGs)发育的标志物,但它们的表达在温度胁迫条件下发生变化。结论:在近期气候变化及其影响因素的影响下,蜜蜂的授粉和繁殖活动处于停止或经历有害下降的边缘。考虑到温度胁迫对营养标记基因(GR10)表达的影响,在hg组织中沉默GR10可以为其在营养性能、生存等方面的意义提供有价值的见解。最后,在未来的实验中,更大的温度范围可以帮助得出更明确的结论。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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