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Effect of cadmium bioavailability in food on its compartmentalisation in carabids

机译:食物中镉生物利用度对其区室化的影响

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Abstract Metals assimilated by organisms are sequestered in various compartments and some forms are more stable than others. Sequestration mechanisms used by invertebrates to detoxify metals and prevent interaction with important biomolecules include metal binding to proteins and other ligands, and storage in inorganic granules. The rate and extent at which metal concentrations in different compartments respond to metal concentrations in food and food characteristics has not received much attention, despite being of great relevance. We performed an experiment on the carabid beetle Pterostichus oblongopunctatus exposed to Cd via food made of ground mealworm ( Tenebrio molitor ) larvae, either reared on Cd contaminated medium or artificially spiked after grinding with CdCl 2 solution. Thus, in both cases we used the same type of food, differing only in the soluble Cd pool available to the predators, represented by P. oblongopunctatus . Subcellular compartmentalisation of Cd into organelles, heat-sensitive and heat-stable proteins (the first supernatant, S1 fraction), cellular debris (the second supernatant, S2 fraction) and metal-rich granules (G fraction) was checked a few times during the contamination (90 d) and decontamination (24 d) phases in a toxicokinetic experiment by using different centrifugation steps. The results showed no effect of the type of food (naturally, Cd-N, vs. artificially contaminated with Cd, Cd-A) on Cd sequestration kinetics in P. oblongopunctatus , but the amount of Cd sequestered in the S1 and G fractions were in general higher in the Cd-A than the Cd-N treatment, indicating that Cd transfer in the food web depends on the speciation of the metal in the food. The proportional distribution of Cd over different fractions was, however, similar in beetles fed both food types. Most of the accumulated Cd in the beetles existed as fraction S1 ( ca . 35), which is important for the transfer of metals to higher trophic levels in a food web. >
机译:摘要 被生物体同化的金属被隔离在不同的隔室中,有些形式比其他形式更稳定。无脊椎动物用来解毒金属和防止与重要生物分子相互作用的螯合机制包括金属与蛋白质和其他配体的结合,以及储存在无机颗粒中。尽管具有重要意义,但不同隔间中的金属浓度对食品中的金属浓度和食品特性的反应速率和程度并未受到太多关注。我们对甲虫Pterostichus oblongopunctatus进行了实验,该甲虫通过由地面黄粉虫(Tenebrio molitor)幼虫制成的食物暴露于Cd,这些幼虫要么在Cd污染的培养基上饲养,要么在用CdCl 2溶液研磨后人工加标。因此,在这两种情况下,我们都使用了相同类型的食物,仅在捕食者可用的可溶性Cd池上有所不同,以P. oblongopunctatus为代表。在毒代动力学实验中,使用不同的离心步骤,在污染(90 d)和去污(24 d)阶段,对Cd分为细胞器、热敏和热稳定蛋白(第一上清液,S1级分)、细胞碎片(第二上清液,S2级分)和富含金属的颗粒(G级分)进行了几次检查。结果显示,食物类型(天然为Cd-N,与人工污染的Cd,Cd-A)对P的Cd螯合动力学没有影响。长点状,但Cd-A处理中S1和G组分中螯合的Cd量通常高于Cd-N处理,表明Cd在食物网中的转移取决于食物中金属的形态。然而,在喂食两种食物类型的甲虫中,Cd在不同部分的比例分布是相似的。甲虫中积累的Cd大部分以S1级分(约35%)的形式存在,这对于将金属转移到食物网中更高的营养水平非常重要。]]>

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