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Seasonality influences cuticle melanization and immune defense in a cricket: support for a temperature-dependent immune investment hypothesis in insects.季节变化影响蟋蟀的角质层黑化和免疫防御:支持昆虫体温依赖型免疫投资假说。
J Exp Biol. 2013 Nov 1;216(Pt 21):4005-10. doi: 10.1242/jeb.091538. Epub 2013 Jul 18.
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Exposure to elevated temperature and Pco(2) reduces respiration rate and energy status in the periwinkle Littorina littorea.暴露于高温和高二氧化碳环境会降低滨螺(Littorina littorea)的呼吸速率和能量状态。
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4
What determines a species' geographical range? Thermal biology and latitudinal range size relationships in European diving beetles (Coleoptera: Dytiscidae).是什么决定了一个物种的地理分布范围?欧洲水龟甲虫(鞘翅目:龟甲科)的热生物学和纬度分布范围大小关系。
J Anim Ecol. 2010 Jan;79(1):194-204. doi: 10.1111/j.1365-2656.2009.01611.x. Epub 2009 Sep 17.
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Insect fat body: energy, metabolism, and regulation.昆虫体脂肪组织:能量、代谢与调控。
Annu Rev Entomol. 2010;55:207-25. doi: 10.1146/annurev-ento-112408-085356.
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Insect thermal tolerance: what is the role of ontogeny, ageing and senescence?昆虫的热耐受性:个体发育、衰老及老化的作用是什么?
Biol Rev Camb Philos Soc. 2008 Aug;83(3):339-55. doi: 10.1111/j.1469-185x.2008.00046.x.
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Evolution of a species' range.一个物种分布范围的演变。
Am Nat. 1997 Jul;150(1):1-23. doi: 10.1086/286054.
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Thermal tolerance, acclimatory capacity and vulnerability to global climate change.热耐受性、驯化能力与对全球气候变化的脆弱性
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Evolutionary ecology of insect immune defenses.昆虫免疫防御的进化生态学
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Physiological basis of temperature-dependent biogeography: trade-offs in muscle design and performance in polar ectotherms.温度依赖性生物地理学的生理基础:极地变温动物肌肉设计与性能的权衡
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欧洲龙虱(鞘翅目:龙虱科)的生理生态位与地理分布范围

Physiological niche and geographical range in European diving beetles (Coleoptera: Dytiscidae).

作者信息

Cioffi Rebekah, Moody A John, Millán Andrés, Billington Richard A, Bilton David T

机构信息

Ecology, Behaviour and Evolution Research Group, School of Biological Sciences, Plymouth University, Plymouth, UK Marine Biology and Ecology Research Centre, School of Marine Science and Engineering, Plymouth University, Plymouth, UK

Ecology, Behaviour and Evolution Research Group, School of Biological Sciences, Plymouth University, Plymouth, UK.

出版信息

Biol Lett. 2016 Jun;12(6). doi: 10.1098/rsbl.2016.0130.

DOI:10.1098/rsbl.2016.0130
PMID:27330169
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4938042/
Abstract

Geographical ranges vary greatly in size and position, even within recent clades, but the factors driving this remain poorly understood. In aquatic beetles, thermal niche has been shown to be related to both the relative range size and position of congeners but whether other physiological parameters play a role is unknown. Metabolic plasticity may be critical for species occupying more variable thermal environments and maintaining this plasticity may trade-off against other physiological processes such as immunocompetence. Here we combine data on thermal physiology with measures of metabolic plasticity and immunocompetence to explore these relationships in Deronectes (Dytiscidae). While variation in latitudinal range extent and position was explained in part by thermal physiology, aspects of metabolic plasticity and immunocompetence also appeared important. Northerly distributed, wide-ranging species apparently used different energy reserves under thermal stress from southern endemic congeners and differed in their antibacterial defences. This is the first indication that these processes may be related to geographical range, and suggests parameters that may be worthy of exploration in other taxa.

摘要

地理分布范围在大小和位置上差异很大,即使在最近的进化枝中也是如此,但驱动这种差异的因素仍知之甚少。在水生甲虫中,热生态位已被证明与同属物种的相对分布范围大小和位置都有关系,但其他生理参数是否起作用尚不清楚。代谢可塑性对于占据更多变热环境的物种可能至关重要,而维持这种可塑性可能会与其他生理过程(如免疫能力)产生权衡。在这里,我们将热生理学数据与代谢可塑性和免疫能力的测量结果相结合,以探讨龙虱属(龙虱科)中的这些关系。虽然纬度分布范围的大小和位置变化部分可以用热生理学来解释,但代谢可塑性和免疫能力的方面似乎也很重要。分布在北方、范围广泛的物种在热应激下显然使用了与南方特有同属物种不同的能量储备,并且在抗菌防御方面也有所不同。这是这些过程可能与地理分布范围相关的第一个迹象,并表明了在其他分类群中可能值得探索的参数。