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首页> 外文期刊>Nanotechnologies in Russia >Mathematical Simulation of the Biokinetics of Selenium Nanoparticles and Salt Forms in Living Organisms
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Mathematical Simulation of the Biokinetics of Selenium Nanoparticles and Salt Forms in Living Organisms

机译:生物体中硒纳米粒子和盐形式的生物学模拟的数学模拟

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摘要

A mathematical simulation of the absorption, distribution, metabolism, and excretion from the body of radioisotope-labeled nanoparticles (NPs) of elemental selenium (Se) in comparison with the traditional form of the trace elements (sodium selenite) has been performed, with them being administered in the gastrointestinal tract of rats that are normally supplied with Se or experience its nutritional deficiency. A compartmental mathematical model that describes the biokinetics of the mentioned Se forms at different levels of its supply is constructed. The quantitative parameters of the model are set using the experimental data from a biokinetic study on rats who, via their gastrointestinal tract, received [75Se]-labeled sodium selenite or Se NPs which were obtained by laser ablation and had an average diameter of 97 ± 5 nm. The proposed model, despite the number of necessary simplifications, satisfactorily explains the difference between the experimental data for both Se-supplied and Se-deficient groups of animals. Thus, in the case of Se deficiency, its assimilation by organs occurs more actively than when it is supplied normally. Se in the form of NPs is preferable to its salt form due to the slower formation of HSe~- anion and excretable Se forms, which are potentially highly toxic. This conclusion is consistent with the hypothesis that Se NPs may be the basis for the development of a new generation of dietary sources of selenium.
机译:与传统形式的元素硒(SE)的放射性同位素标记的纳米颗粒(NPS)体的吸收,分布,代谢和排泄的数学模拟,与它们相比,与它们进行了相比的微量元素(硒沸石)的传统形式在通常用SE供应或经验其营养缺乏的大鼠的胃肠道中施用。构建了描述在其供应水平的提到的SE形式的生物机的隔间数学模型。使用从通过激光烧蚀获得的大鼠[75SE] - 标记的亚硒酸钠或通过激光烧蚀获得的大鼠的生物学研究,从对大鼠的实验数据进行设定的模型的定量参数。 5纳米。拟议的模型尽管有必要的简化次数,但令人满意地解释了SE供应和SE缺乏动物组的实验数据之间的差异。因此,在SE缺乏的情况下,其通过器官的同化会比正常供应时更加主动地发生。由于HSE〜 - 阴离子和排泄的SE形式的形成较慢,因此含有NPS的盐形式是优选的,这是潜在的剧毒性。该结论与SE NPS可能成为开发新一代硒烃来源的基础一致。

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