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固相微萃取作为一种强大的替代方法,用于筛选放线菌中的次生代谢产物。

Solid phase microextraction as a powerful alternative for screening of secondary metabolites in actinomycetes.

机构信息

Instituto de Química de São Carlos, Universidade de São Paulo, São Paulo, Brazil.

Departamento de Química, Faculdade de Filosofia Ciências e Letras de Ribeirão Preto, Universidade de São Paulo, São Paulo, Brazil.

出版信息

J Mass Spectrom. 2019 Oct;54(10):823-833. doi: 10.1002/jms.4434. Epub 2019 Oct 18.

Abstract

Actinobacteria are one of the most promising producers of medically and industrially relevant secondary metabolites. However, screening of such compounds in actinobacteria growth demands simple, fast, and efficient extraction procedures that enable detection and precise quantification of biologically active compounds. In this regard, solid phase microextraction (SPME) emerges as an ideal extraction technique for screening of secondary metabolites in bacteria culture due to its non-exhaustive, minimally invasive, and non-destructive nature: its integrated sample preparation workflow; balanced coverage feature; metabolism quenching capabilities; and superior cleanup, as well as its versatility in configuration, which enables automation and high throughput applications. The current work provides a comparison of micro-scale and direct immersion SPME (DI-SPME) for screening of secondary metabolites, describes the optimization of the developed DI-SPME method, and introduces the developed technique for mapping of target secondary metabolites as well as its direct coupling to mass spectrometry for such applications. The optimized DI-SPME method provided higher amounts of extracted ions and intensity signals, yielding superior extraction and desorption efficiency as compared with micro-scale extraction. Studied compounds presented stability on the coating for 24 h at room temperature. The DI-SPME mapping approach revealed that lysolipin I and the lienomycin analog are distributed along the center and edges of the colony, respectively. Direct coupling of SPME to MS provided a similar ions profile as SPME-LC-MS while enabling a significant decrease in analysis time, demonstrating its suitability for such applications. DI-SPME is herein presented as an alternative to micro-scale extraction for screening of secondary metabolites in actinobacteria solid medium, as well as a feasible alternative to DESI-IMS for mapping of biologic radial distribution of secondary metabolites and cell life cycle studies. Lastly, the direct coupling of DI-SPME to MS is presented as a fast, powerful technique for high throughput analysis of secondary metabolites in this medium.

摘要

放线菌是产生具有医学和工业相关的次生代谢物的最有希望的生产者之一。然而,在放线菌生长中筛选此类化合物需要简单、快速和有效的提取程序,以便检测和精确量化生物活性化合物。在这方面,固相微萃取 (SPME) 作为一种理想的提取技术,用于细菌培养物中次生代谢物的筛选,因为它具有非耗竭性、微创性和非破坏性:其集成的样品制备工作流程;平衡的覆盖特征;代谢猝灭能力;以及卓越的净化能力,以及其在配置方面的多功能性,使其能够实现自动化和高通量应用。目前的工作比较了微尺度和直接浸入式 SPME (DI-SPME) 用于筛选次生代谢物,描述了所开发的 DI-SPME 方法的优化,并介绍了开发的目标次生代谢物映射技术及其与质谱的直接耦合,用于此类应用。优化的 DI-SPME 方法提供了更多的提取离子和强度信号,与微尺度提取相比,具有更高的提取和解吸效率。研究化合物在室温下在涂层上稳定 24 小时。DI-SPME 映射方法表明,溶血磷脂 I 和连霉素类似物分别分布在菌落的中心和边缘。SPME 与 MS 的直接耦合提供了与 SPME-LC-MS 相似的离子谱,同时显著缩短了分析时间,证明了其在这些应用中的适用性。DI-SPME 在此被提出作为筛选放线菌固体培养基中次生代谢物的微尺度提取的替代方法,以及作为 DESI-IMS 用于映射次生代谢物的生物径向分布和细胞生命周期研究的可行替代方法。最后,将 DI-SPME 直接耦合到 MS 被提出作为一种快速、强大的技术,用于该培养基中次生代谢物的高通量分析。

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