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首页> 外文期刊>Journal of Insect Physiology >Does plasticity in thermal tolerance trade off with inherent tolerance? The influence of setal tracheal gills on thermal tolerance and its plasticity in a group of European diving beetles
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Does plasticity in thermal tolerance trade off with inherent tolerance? The influence of setal tracheal gills on thermal tolerance and its plasticity in a group of European diving beetles

机译:具有固有的耐受性的热容耐受性的可塑性吗? 一群欧洲潜水甲虫对套筒气管鳃对耐热性及其可塑性的影响

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In the face of global warming, both the absolute thermal tolerance of an ectotherm, and its ability to shift its tolerance level via acclimation, are thought to be fundamentally important. Understanding the links between tolerance and its plasticity is therefore critical to accurately predict vulnerability to warming. Previous studies in a number of ectotherm taxa suggest trade-offs in the evolution of thermal tolerance and its plasticity, something which does not, however, apply to Deronectes diving beetles, where these traits are instead positively correlated. Here we revisit the relationship between thermal tolerance and plasticity in these beetles, paying attention to a recently discovered morphological adaptation supporting under water respiration setal tracheal gills. Hollow setae on the elytra interconnect with the beetle's tracheal system, providing a gas exchange surface that allows oxygen to be extracted directly from the water. This enables individuals to stay submerged for longer than their subelytral air stores would allow. We show that hypoxia reduced heat tolerance, especially when individuals were denied access to air, forcing them to rely solely on aquatic gas exchange. Species with higher densities of these gas-exchanging setae exhibited improved cold tolerance, but reduced heat tolerance and lower plasticity of heat tolerance. Differences in setal tracheal gill density across species were also related to habitat use: species with low gill density were found mainly in intermittent, warmer rivers, where underwater gas exchange is more problematic and risks of surfacing may be smaller. Moreover, when controlling for differences in gill density we no longer found a significant relationship between heat tolerance and its plasticity, suggesting that the previously reported positive relationship between these variables may be driven by differences in gill density. Differences in environmental conditions between the preferred habitats could simultaneously select for characteristic differences in both thermal tolerance and gill density. Such simultaneous selection may have resulted in a non-causal association between cold tolerance and gill density. For heat tolerance, the correlations with gill density could reflect a causal relationship. Species relying strongly on diffusive oxygen uptake via setal tracheal gills may have a reduced oxygen supply capacity and may be left with fewer options for matching oxygen uptake to oxygen demand during acclimation, which could explain their reduced heat tolerance and limited plasticity. Our study helps shed light on the mechanisms that underpin thermal tolerance and plasticity in diving air breathing ectotherms, and explores how differences in thermal tolerance across species are linked to their selected habitat, morphological adaptations and evolutionary history.
机译:面对全球变暖,异常的绝对热耐热性以及其通过适应的耐受性水平的能力,被认为是根本重要的。因此,了解公差与其可塑性之间的链接是至关重要的,以准确地预测变暖的脆弱性。以前的许多异常分类群提出了耐热耐受性和可塑性的权衡,但是,这些特征似乎不适用于耐毒性潜水甲虫。在这里,我们重新审视这些甲虫中的热耐受性和可塑性之间的关系,注意最近发现的呼吸套管气管鳃支撑的最近发现的形态适应。在ELYTRA互连的空心SETAE与甲虫的气管系统,提供允许氧气直接从水中提取的气体交换表面。这使得个人能够保持淹没,而不是亚象储存的时间。我们表明缺氧降低了耐热性,特别是当个人被拒绝进入空气时,迫使他们完全依赖水生气交换。具有较高密度的这些气体交换砂脂的物种表现出改善的耐寒性,但降低了耐热性和耐热性的较低可塑性。血管气管鳃密度跨物种的差异也与栖息地使用有关:主要在间歇性的温暖河流中发现低鳃密度的物种,其中水下气体交换是更有问题的,并且表面的风险可能更小。此外,当控制鳃密度的差异时,我们不再发现耐热性和可塑性之间的显着关系,这表明这些变量之间先前报道的阳性关系可以通过鳃密度的差异驱动。优选栖息地之间的环境条件的差异可以同时选择热容耐热性和鳃密度的特征差异。这种同时选择可能导致耐寒耐腐蚀和鳃密度之间的非因果关系。对于耐热性,与鳃密度的相关性可以反映因果关系。通过套管气管鳃尺寸强烈依赖于扩散氧气吸收的物种可能具有降低的氧气供应能力,并且可以留下更少的选择,用于在适应时将氧气吸收与氧需求匹配,这可以解释其降低的耐热性和有限的可塑性。我们的研究有助于揭示在潜水空气呼吸异常中的热耐受性和可塑性的机制,并探讨跨物种的热耐受性的差异与其所选栖息地,形态适应和进化历史相关。

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