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通过绿色方法缩短硫细胞周期,用于生物生产细胞外类金属-硫化物纳米颗粒。

Shortening the sulfur cell cycle by a green approach for bio-production of extracellular metalloid-sulfide nanoparticles.

机构信息

Department of Medical Physics and Biomedical Engineering, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.

Department of Mycology, Pasteur Institute of Iran, Tehran, 1316943551, Iran.

出版信息

Sci Rep. 2023 Mar 23;13(1):4723. doi: 10.1038/s41598-023-31802-6.

Abstract

In the present study, a new approach was introduced regarding the extracellular synthesis of selenium sulfide micro/nano-particles using Saccharomyces cerevisiae in different ammonium sulfate supplementation and in the presence of sodium selenosulfate precursors (S) and a blend of selenous acid and sodium sulfite (S). In S, only cell supernatant exposed to ammonium sulfate was able to reduce sodium selenosulfate. Whereas, in S, cell supernatant in both pre-conditions of with or without ammonium sulfate (S + or S-) were able to reduce selenous acid and sodium sulfite. Electron microscopy, also indicated that selenium sulfide NPs were successfully synthesized with average size of 288 and 332 nm for S + and S- in SEM and 268 and 305 nm in TEM. Additionally, elemental mapping by energy-dispersive x-ray analysis confirmed the presence of sulfur/selenium elements in the particles in a proportion of 24.50 and 23.31 for S- and S + , respectively. The mass spectrometry indicated the probability of SeS, SeS, Se, Se, SeS, SeS, SeS/Se, Se/SeS, Se, Se/SeS, SeS/SeS and SeS/SeS molecules for S + and of Se, Se, SeS/Se, Se and Se species for S-. In FTIR spectra, primary (i.e. 1090-1020 and 1650-1580 cm) and secondary (1580-1490 cm) amine bands duly confirmed the protein corona around the NPs.

摘要

在本研究中,引入了一种新方法,使用酿酒酵母在不同硫酸铵补充和亚硒酸钠前体 (S) 和亚硒酸与亚硫酸钠混合物 (S) 的存在下,从细胞外合成硫化硒微/纳米颗粒。在 S 中,只有暴露于硫酸铵的细胞上清液能够还原亚硒酸钠。而在 S 中,无论是否存在硫酸铵(S+或 S-),细胞上清液都能够还原亚硒酸和亚硫酸钠。电子显微镜还表明,成功地用 SEM 中平均尺寸为 288 和 332nm 的 S+和 S-以及 TEM 中 268 和 305nm 的硒化硫 NPs 进行了合成。此外,能量色散 X 射线分析的元素映射证实了颗粒中硫/硒元素的存在,S-和 S+的比例分别为 24.50 和 23.31。质谱分析表明,S+的 SeS、SeS、Se、Se、SeS、SeS、SeS/Se、Se/SeS、Se、Se/SeS、SeS/SeS 和 SeS/SeS 分子的可能性为 99%,而 S-的 Se、SeS/Se、Se 和 Se 物种的可能性为 99%。在 FTIR 光谱中,一级(即 1090-1020 和 1650-1580cm)和二级(1580-1490cm)胺带恰当地证实了 NPs 周围的蛋白质冠。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/210e/10036537/9cc410fcef61/41598_2023_31802_Fig1_HTML.jpg

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