首页> 外文期刊>Journal of Insect Science >Variation in C:N:S Stoichiometry and Nutrient Storage Related to Body Size in a Holometabolous Insect (Curculio davidi) (Coleoptera: Curculionidae) Larva
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Variation in C:N:S Stoichiometry and Nutrient Storage Related to Body Size in a Holometabolous Insect (Curculio davidi) (Coleoptera: Curculionidae) Larva

机译:C:N:S化学计量比和营养储存与全代谢昆虫(Curculio davidi)(鞘翅目:Curculionidae)幼虫体型相关的变化

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Body size can be an important factor controlling consumer stoichiometry. In holometabolous insects, body size is typically associated with nutrient storage. Consumer stoichiometry is known to vary within species across a range of body sizes; however, the contribution of nutrient storage to this variation is not well understood. We used the fifth-instar larvae of the oak weevil (Coleoptera: Curculio davidi Fairmaire), which is characterized by a high capacity for nutrient storage, to investigate the effect of shifts in nutrient storage with body mass on variations in larva stoichiometry. Our results showed that weevil larvae with larger body mass had a lower carbon (C) content, reflecting decreases in the sequestration rate of C-rich lipids. Larger larvae had elevated concentrations of nitrogen (N), sulfur (S), and protein. The similar patterns of variation in elemental composition and macromolecule storage with body weight indicate that the shift in nutrient storage is the main factor causing the variation in larval stoichiometry with body weight. This finding was further supported by the low variation in residual larval biomass C, N, and S concentrations after lipid extraction. These results help decipher the physiological mechanism of stoichiometric regulation in growing organisms.
机译:体型可能是控制消费者化学计量的重要因素。在全代谢昆虫中,体型通常与营养物质的储存有关。已知消费者的化学计量在不同的体型范围内会有所不同。然而,养分储存对这种变化的贡献还不甚清楚。我们使用了具有高养分储存能力的橡树象鼻虫(Coleoptera:Curculio davidi Fairmaire)的五龄幼虫,研究了随着体重变化的养分储存变化对幼虫化学计量的影响。我们的结果表明,体重较大的象鼻虫幼虫的碳(C)含量较低,这反映了富含C的脂质的螯合速率降低。较大的幼虫具有较高的氮(N),硫(S)和蛋白质浓度。元素组成和大分子存储量随体重变化的相似模式表明,营养物存储量的变化是引起幼虫化学计量随体重变化的主要因素。脂质提取后残留幼虫生物量C,N和S浓度的低变化进一步支持了这一发现。这些结果有助于破译生长中生物的化学计量调节的生理机制。

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