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真菌毕赤酵母菌丝体中硒的生物转化。

Biotransformation of selenium in the mycelium of the fungus Phycomyces blakesleeanus.

机构信息

Department of Life Sciences, Institute for Multidisciplinary Research, University of Belgrade, Kneza Višeslava 1, 11030, Belgrade, Serbia.

Elettra Sincrotrone Trieste S.C.P.A., Basovizza, Trieste, Italy.

出版信息

Anal Bioanal Chem. 2022 Aug;414(20):6213-6222. doi: 10.1007/s00216-022-04191-4. Epub 2022 Jun 27.

DOI:10.1007/s00216-022-04191-4
PMID:35759022
Abstract

Biotransformation of toxic selenium ions to non-toxic species has been mainly focused on biofortification of microorganisms and production of selenium nanoparticles (SeNPs), while far less attention is paid to the mechanisms of transformation. In this study, we applied a combination of analytical techniques with the aim of characterizing the SeNPs themselves as well as monitoring the course of selenium transformation in the mycelium of the fungus Phycomyces blakesleeanus. Red coloration and pungent odor that appeared after only a few hours of incubation with 10 mM Se indicate the formation of SeNPs and volatile methylated selenium compounds. SEM-EDS confirmed pure selenium NPs with an average diameter of 57 nm, which indicates potentially very good medical, optical, and photoelectric characteristics. XANES of mycelium revealed concentration-dependent mechanisms of reduction, where 0.5 mM Se led to the predominant formation of Se-S-containing organic molecules, while 10 mM Se induced production of biomethylated selenide (Se) in the form of volatile dimethylselenide (DMSe) and selenium nanoparticles (SeNPs), with the SeNPs/DMSe ratio rising with incubation time. Several structural forms of elemental selenium, predominantly monoclinic Se chains, together with trigonal Se polymer chain, Se and Se ring structures, were detected by Raman spectroscopy.

摘要

将有毒硒离子转化为无毒物质的生物转化主要集中在微生物的生物强化和硒纳米颗粒(SeNPs)的生产上,而对转化机制的关注则少得多。在这项研究中,我们应用了一系列分析技术,旨在对 SeNPs 本身进行特征描述,并监测真菌 Phycomyces blakesleeanus 菌丝体中硒转化的过程。在用 10 mM Se 孵育仅几个小时后,就出现了红色着色和刺激性气味,这表明形成了 SeNPs 和挥发性甲基化硒化合物。SEM-EDS 证实了纯硒 NPs 的存在,其平均直径为 57nm,这表明其具有很好的医学、光学和光电特性。菌丝体的 XANES 揭示了还原的浓度依赖性机制,其中 0.5 mM Se 主要导致含 Se-S 的有机分子的形成,而 10 mM Se 则诱导生物甲基化硒化物(Se)以挥发性二甲基硒化物(DMSe)和硒纳米颗粒(SeNPs)的形式生成,随着孵育时间的延长,SeNPs/DMSe 比值上升。拉曼光谱检测到几种元素硒的结构形式,主要是单斜硒链,以及三角硒聚合物链、硒和硒环结构。

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