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Selenium nanovirus and its cytotoxicity in selenite-exposed higher living organisms

机译:硒纳米病毒及其在亚硒酸盐接触的高等生物中的细胞毒性

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摘要

Selenium (Se) is an essential micronutrient in living organisms, having a narrow margin between essential and potentially toxic intake/exposure. Thus, the biochemistry of Se in living organisms must be studied in-depth to determine the underlying mechanism of Se cytotoxicity. In this study, we report the emergence of selenium nanovirus (SeNVs) in selenite-exposed fish (freshwater and saltwater) and plants (dryland) and its toxicity in them. SeNVs were found in both the abdomen and tail of and saltwater , which led to their death. The occurrence of the intracellular assembly of SeNVs was observed in the roots and leaves of corn , but not in those of . SeNVs led to the death of but caused chronic toxicity in . SeNVs should be a system or structure that dissipates the intracellular redox gradients of the host cells, with simple information consisting Se–O, Se–N, or Se–S bond, that would ensure elemental Se ligand binding with nearly specific biomolecules in host cells, thereby maintaining their composition and stabilizing their structure. The multiple toxic effects of Se, therefore, could be the consequence of increase of entropy in the host cells caused by the intracellular assembly of SeNVs. This study may provide an insight into the underlying mechanism of Se in environmental toxicology and its applications in human health.
机译:硒(Se)是生命有机体中必不可少的微量营养素,在必需和有毒的摄入/暴露之间具有很小的余量。因此,必须深入研究硒在生物中的生物化学,以确定硒细胞毒性的潜在机制。在这项研究中,我们报告了硒暴露于亚硒酸盐的鱼类(淡水和盐水)和植物(干旱地区)中出现了硒纳米病毒(SeNVs)及其毒性。在腹部和尾巴以及盐水中均发现了SeNV,导致其死亡。在玉米的根和叶中观察到了SeNVs的细胞内装配发生,而在玉米的根和叶中没有出现。 SeNVs导致小鼠死亡,但引起慢性毒性。 SeNVs应该是能够消散宿主细胞的细胞内氧化还原梯度的系统或结构,并具有简单的信息,包括Se–O,Se–N或Se–S键,可确保元素Se配体与宿主细胞中几乎特定的生物分子结合,从而保持其组成并稳定其结构。因此,Se的多重毒性作用可能是由于SeNV的细胞内组装导致宿主细胞熵增加的结果。这项研究可能会提供有关硒在环境毒理学中的潜在机制及其在人类健康中的应用的见解。

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