酿酒酵母生物强化过程中硒同位素的分离及15N代谢标记的影响

IF 2.7 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Luis Fernando Mejia Diaz, Jakub Karasinski, Kazimierz Wrobel, Alma Rosa Corrales Escobosa, Eunice Yanez Barrientos, Ludwik Halicz, Ewa Bulska, Katarzyna Wrobel
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引用次数: 0

摘要

生物系统中金属/准金属的同位素分馏是一个新兴的研究领域,需要应用最先进的分析化学工具,并提供与生命科学相关的数据。在这项工作中,在面包酵母(酿酒酵母)的生物强化过程中测量了硒的摄取和硒同位素分馏,面包酵母是一种广泛用于膳食硒补充和癌症预防的产品。另一方面,15N代谢标记在基于质谱的比较蛋白质组学中是一种有价值的工具。对于硒酵母,这种标记将有助于评估硒对酵母蛋白质组的影响;然而,产生的问题是微生物中15N的存在是否影响硒的吸收及其同位素分馏。为了解决上述方面,通过氢化物发生-多收集器电感耦合等离子体质谱法(HG-MC-ICP–MS)分析细胞外还原和细胞掺入的Se组分。研究发现,细胞外还原硒富含轻同位素;对于细胞掺入的Se,这种变化甚至更为明显,这为生物亚硒酸盐还原过程中的质量分馏提供了新的证据。在15N存在的情况下,细胞外和细胞内硒对轻同位素的偏好较弱。此外,与14N生物量相比,15N的硒摄取量显著增加,氢化物发生微波等离子体原子发射光谱法(HG MP–AES)和四极ICP–MS结果之间具有良好的一致性。对重氮观察到的生物学效应表明,15N在蛋白质组水平上驱动了改变,这促进了硒进入对轻同位素偏好降低的细胞。图形摘要
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fractionation of selenium isotopes during biofortification of Saccharomyces cerevisiae and the influence of metabolic labeling with 15N

Fractionation of selenium isotopes during biofortification of Saccharomyces cerevisiae and the influence of metabolic labeling with 15N

Isotope fractionation of metals/metalloids in biological systems is an emerging research area that demands the application of state-of-the-art analytical chemistry tools and provides data of relevance to life sciences. In this work, Se uptake and Se isotope fractionation were measured during the biofortification of baker’s yeast (Saccharomyces cerevisiae)—a product widely used in dietary Se supplementation and in cancer prevention. On the other hand, metabolic labeling with 15N is a valuable tool in mass spectrometry-based comparative proteomics. For Se-yeast, such labeling would facilitate the assessment of Se impact on yeast proteome; however, the question arises whether the presence of 15N in the microorganisms affects Se uptake and its isotope fractionation. To address the above-mentioned aspects, extracellularly reduced and cell-incorporated Se fractions were analyzed by hydride generation–multi-collector inductively coupled plasma–mass spectrometry (HG MC ICP–MS). It was found that extracellularly reduced Se was enriched in light isotopes; for cell-incorporated Se, the change was even more pronounced, which provides new evidence of mass fractionation during biological selenite reduction. In the presence of 15N, a weaker preference for light isotopes was observed in both, extracellular and cell-incorporated Se. Furthermore, a significant increase in Se uptake for 15N compared to 14N biomass was found, with good agreement between hydride generation microwave plasma–atomic emission spectrometry (HG MP–AES) and quadrupole ICP–MS results. Biological effects observed for heavy nitrogen suggest 15N-driven alteration at the proteome level, which facilitated Se access to cells with decreased preference for light isotopes.

Graphical abstract

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来源期刊
JBIC Journal of Biological Inorganic Chemistry
JBIC Journal of Biological Inorganic Chemistry 化学-生化与分子生物学
CiteScore
5.90
自引率
3.30%
发文量
49
审稿时长
3 months
期刊介绍: Biological inorganic chemistry is a growing field of science that embraces the principles of biology and inorganic chemistry and impacts other fields ranging from medicine to the environment. JBIC (Journal of Biological Inorganic Chemistry) seeks to promote this field internationally. The Journal is primarily concerned with advances in understanding the role of metal ions within a biological matrix—be it a protein, DNA/RNA, or a cell, as well as appropriate model studies. Manuscripts describing high-quality original research on the above topics in English are invited for submission to this Journal. The Journal publishes original articles, minireviews, and commentaries on debated issues.
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