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植物乳杆菌NML21对Se(IV)的生物还原及硒纳米球Se(0)的合成

Bioreduction of Se(IV) by Lactiplantibacillus plantarum NML21 and synthesis of selenium nanospheres Se(0).

作者信息

Wang Longlin, Song Li, Wang Pengjie, Zhang Hao, Li Yiheng, Song Juan, Zhong Liwen, Liu Caihong, Zhang Weibing, Wen Pengcheng

机构信息

College of Food Science and Engineering, Gansu Agricultural University, Lanzhou 730070, China.

Gansu Hualing DAIRY CO., LTDG, Gannan 730010, China.

出版信息

Food Chem. 2024 Sep 15;452:139595. doi: 10.1016/j.foodchem.2024.139595. Epub 2024 May 11.

Abstract

Selenium nanospheres (SeNPs) show less toxicity and greater bioavailability than selenite salts. This research demonstrated the substantial tolerance and efficient conversion of Se(IV) into SeNPs by Lactiplantibacillus plantarum NML21. The bioreduction process of Se(IV) and the properties of SeNPs, including their morphology, particle size, and stability, were investigated with techniques including SEM, EDX, TEM, XPS, FT-IR, dynamic light scattering, XRD, and Raman spectroscopy. Under high selenium stress, certain cells displayed significant deformation and rupture, and released SeNPs as the main product of the bioreduction of Se(IV). These SeNPs were red, amorphous, zero-valent, and spherical, with an average diameter of 160 nm. Spectroscopic analysis highlighted that the functional groups of CO and CO are key to the bioreduction of Se(IV). The study suggested preliminary mechanisms for the bioreduction of Se(IV) and the formation and release of SeNPs by lactic acid bacteria. NML21 may therefore be a promising candidate for SeNPs synthesis.

摘要

硒纳米球(SeNPs)比亚硒酸盐的毒性更低且生物利用度更高。本研究证明了植物乳杆菌NML21对硒(IV)具有较强的耐受性,并能将其高效转化为SeNPs。利用扫描电子显微镜(SEM)、能谱仪(EDX)、透射电子显微镜(TEM)、X射线光电子能谱(XPS)、傅里叶变换红外光谱(FT-IR)、动态光散射、X射线衍射(XRD)和拉曼光谱等技术,研究了硒(IV)的生物还原过程以及SeNPs的性质,包括其形态、粒径和稳定性。在高硒胁迫下,某些细胞出现明显变形和破裂,并释放出SeNPs作为硒(IV)生物还原的主要产物。这些SeNPs呈红色、无定形、零价且为球形,平均直径为160纳米。光谱分析表明,CO和CO的官能团是硒(IV)生物还原的关键。该研究提出了硒(IV)生物还原以及乳酸菌形成和释放SeNPs的初步机制。因此,NML21可能是合成SeNPs的一个有前景的候选菌株。

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