Differential expression of hemolymph proteins in wild bumblebees provides insights into species-specific impacts of heat stress

IF 1.6 4区 农林科学 Q2 ENTOMOLOGY
Kimberly Przybyla, Baptiste Martinet, Denis Michez, Michel Bocquet, Dalel Askri, Philippe Bulet
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引用次数: 0

Abstract

Wildlife faces an increasing threat from extreme climatic events, such as heatwaves, which can have a severe impact on various species, including crucial pollinators like bumblebees. Bumblebees are cold-adapted and heterothermic, possessing the ability to regulate their internal temperature. The impact of heat stress seems species specific in bumblebees. While most species are impacted, some bumblebee species manage to survive, potentially by employing physiological mechanisms, including the modulation of their protein profile (e.g. Heat Shock Proteins). However, there is limited understanding of how their protein profiles are associated with heat exposure. In this study, we examined the global variation in the protein profile of males from two bumblebee species sampled in the wild: the heat-tolerant Bombus terrestris and the heat-sensitive Bombus magnus. After subjecting them to heat stupor at 40°C in controlled condition, it was observed that nearly all B. terrestris survived the stress, while over 50% of B. magnus individuals succumbed to the heat exposure. Through off-gel bottom-up proteomics and LC–MS/MS analysis of the hemolymph proteome, we identified 164 proteins in both species with a large part of differentially expressed proteins after heat exposure. Additionally, quantitative analysis of fat bodies revealed that the relative mass was stable in B. terrestris, while it was significantly lower in B. magnus exposed to heat stress. Our data suggest that compared with B. magnus, B. terrestris displays a higher adaptability of its hemolymph proteome in response to heat stress. This adaptability could be a key factor contributing to the high physiological resistance of B. terrestris and its ability to adapt to new, stressful environments expected due to climate change. Understanding these mechanisms of protein regulation in bumblebees could provide valuable insights into their resilience and vulnerability facing environmental stresses.

野生大黄蜂血淋巴蛋白的差异表达提供了热应激对物种特异性影响的见解
野生动物面临着极端气候事件日益严重的威胁,如热浪,这可能对各种物种产生严重影响,包括像大黄蜂这样重要的传粉者。大黄蜂是适应寒冷和异温的动物,具有调节体内温度的能力。热应激对大黄蜂的影响似乎是物种特有的。虽然大多数物种受到影响,但一些大黄蜂物种设法生存,可能是通过利用生理机制,包括调节其蛋白质谱(例如热休克蛋白)。然而,人们对它们的蛋白质谱与热暴露之间的关系了解有限。在这项研究中,我们检测了两种野生大黄蜂雄性蛋白质谱的全球变化:耐热的Bombus terrestris和热敏的Bombus magnus。在40°C的控制条件下,对其进行热昏迷处理后,几乎所有的陆地白蚁都能存活下来,而50%以上的大白蚁则死于热暴露。通过下凝胶自底向上的蛋白质组学和LC-MS /MS分析,我们在两个物种中鉴定出164个蛋白,其中大部分是热暴露后差异表达的蛋白。此外,对脂肪体的定量分析表明,陆地白蚁的相对质量稳定,而热胁迫下的大白蚁的相对质量显著降低。我们的数据表明,与magnus相比,陆地B. terrestris的血淋巴蛋白质组对热应激的适应性更高。这种适应性可能是导致土刺草具有高生理抗性和适应气候变化导致的新压力环境能力的关键因素。了解大黄蜂蛋白质调节的这些机制可以为它们面对环境压力的恢复能力和脆弱性提供有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physiological Entomology
Physiological Entomology 生物-昆虫学
CiteScore
2.80
自引率
6.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: Physiological Entomology broadly considers “how insects work” and how they are adapted to their environments at all levels from genes and molecules, anatomy and structure, to behaviour and interactions of whole organisms. We publish high quality experiment based papers reporting research on insects and other arthropods as well as occasional reviews. The journal thus has a focus on physiological and experimental approaches to understanding how insects function. The broad subject coverage of the Journal includes, but is not limited to: -experimental analysis of behaviour- behavioural physiology and biochemistry- neurobiology and sensory physiology- general physiology- circadian rhythms and photoperiodism- chemical ecology
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