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微波辅助自由基降解五味子多糖:优化、鉴定与应用。

Microwave assisted free radical degradation of Schisandra polysaccharides: Optimization, identification and application.

机构信息

Key Laboratory of Basic and Application Research of Beiyao (Heilongjiang University of Chinese Medicine), Ministry of Education, 24 Heping Road, Harbin 150040, PR China.

Key Laboratory of Basic and Application Research of Beiyao (Heilongjiang University of Chinese Medicine), Ministry of Education, 24 Heping Road, Harbin 150040, PR China.

出版信息

Int J Biol Macromol. 2023 May 15;237:124107. doi: 10.1016/j.ijbiomac.2023.124107. Epub 2023 Mar 21.

Abstract

In order to establish structural-fingerprinting of polysaccharides for improvement of quality assessment, a sample preparation method based on microwave assisted free radical degradation (MFRD) of plant polysaccharides was proposed to produce oligosaccharides and small M polysaccharides. As a case study of Schisandra chinensis and S. sphenanthera fruit polysaccharides (SCP and SSP), the MFRD condition (i.e., 100 °C, 30 s and 80 W) was confirmed to be optimal. The potential structures of the MFRD products of SCP and SSP were further discussed by combinations of HILIC-ESI-QTOF-MS and HILIC-ESI-Q-OT-IT-MS/MS. As followed, multivariable statistical analysis shows a clear separation of SCP and the SSP in PCA and OPLS-DA plots based HILIC-ESI-QTOF-MS data. The VIP plot unveils several key Q-markers (e.g., peaks 3, 8, 9, 10, 15, 25, 26, 28, 29 and 30) with significant differences and stable emergences. Furthermore, a low-polymerization compositional fingerprinting was successfully constructed for SCP and SSP using a high-performance anion-exchange chromatography with pulsed amperometric detection. Compared to the conventional sample preparation methods, the MFRD took only a few thousandth of the time to accomplish degradations of plant polysaccharides. It significantly improves sample preparations and is generally applicable to various polysaccharide samples.

摘要

为了建立多糖的结构指纹图谱,以提高质量评估水平,提出了一种基于微波辅助自由基降解(MFRD)的植物多糖样品制备方法,以产生寡糖和小 M 多糖。以五味子和华中五味子果实多糖(SCP 和 SSP)为例,确定了 MFRD 条件(即 100°C、30 秒和 80W)为最佳条件。通过高效离子交换色谱-电喷雾-四极杆飞行时间质谱(HILIC-ESI-QTOF-MS)和高效离子交换色谱-电喷雾-四极杆轨道阱串联质谱(HILIC-ESI-Q-OT-IT-MS/MS)联用,进一步探讨了 SCP 和 SSP 的 MFRD 产物的潜在结构。随后,多变量统计分析显示,基于 HILIC-ESI-QTOF-MS 数据的 PCA 和 OPLS-DA 图谱能够清晰地区分 SCP 和 SSP。VIP 图揭示了几个具有显著差异和稳定出现的关键 Q-标志物(如峰 3、8、9、10、15、25、26、28、29 和 30)。此外,还成功地建立了一种使用高效阴离子交换色谱-脉冲安培检测的低聚合组成指纹图谱,用于 SCP 和 SSP。与传统的样品制备方法相比,MFRD 只需几千分之一的时间即可完成植物多糖的降解。它显著提高了样品制备的效率,并且普遍适用于各种多糖样品。

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