[Determination of three plant growth regulators in Dendrobium officinale and Anoectochilus roxburghii by three-phase hollow fiber liquid phase microextraction- high performance liquid chromatography].

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Ping-Ping Wu, Ren-Yi Lin, Li-Ying Huang
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引用次数: 0

Abstract

Dendrobium officinale (D. officinale) and Anoectochilus roxburghii (A. roxburghii) are precious raw materials for traditional Chinese medicine. The growing demand for D. officinale and A. roxburghii cannot be met by current production techniques. Hence, the widespread artificial cultivation of D. officinale and A. roxburghii using substantial amounts of plant growth regulators (PGRs) has emerged. The excessive use of PGRs not only affects the quality and efficacy of medicinal materials but also causes a series of safety issues. Therefore, expanding research on residual PGRs in valuable Chinese medicinal materials is important to avoid the health hazards caused by these substances. Unfortunately, the identification of PGRs is challenging because of their trace and complex matrices. High performance liquid chromatography (HPLC) has become one of the mainstream analytical methods for PGR determination. An important consideration in the application of this technique to the detection of trace acidic PGRs is how to improve its accuracy and sensitivity. Three-phase hollow fiber liquid phase microextraction (3P-HF-LPME) has the advantages of a high enrichment factor, complex sample purification ability, low reagent consumption, low cost, and easy integration with chromatographic systems. Thus, the 3P-HF-LPME method overcomes the many shortcomings of traditional sample pretreatment methods. In this study, a novel, simple, and effective analytical method based on 3P-HF-LPME combined with HPLC was developed to extract, purify, enrich, and detect three trace acidic PGRs (indole-3-acetic acid, naphthyl acetic acid and indolebutyric acid) in D. officinale and A. roxburghii. The chromatographic separation conditions and 3P-HF-LPME model parameters were systematically optimized for this purpose. First, the sample solution was prepared by ultrasonication and low-temperature standing, and then adjusted to pH 3.0 using dilute hydrochloric acid. The sample solution (10 mL) and NaCl (1.50 g) were stored in a 15 mL brown extraction bottle with a built-in magnetic stirrer. Next, 30 μL of NaOH solution (pH 11.0) as the inner phase solution was injected into the inner cavity of a hollow fiber tube, which was subsequently sealed at both ends. The hollow fiber tube was soaked in n-octanol for 5 min and dried naturally to remove excess extraction solvent from its surface. Finally, the fiber tube was placed in a brown extraction bottle and stirred using a thermostatic magnetic stirrer at 40 ℃ and 1600 r/min for 2 h. After extraction, the three target analytes were separated on a Welch Ultimate XB-C18 column (250 mm×4.6 mm, 5 μm) under isocratic elution conditions using acetic acid aqueous solution and methanol (45∶55, v/v) as the eluent. The results indicated that the three PGRs showed good linearity in the range of 0.5-100.0 μg/L (coefficients of determination (r2)=0.9999), with limits of detection (LODs) of 0.02-0.15 μg/L. The method recoveries were 88.5-102.2%, with relative standard deviations (RSDs) of less than 3.7% (n=3). The extraction efficiencies and enrichment factors of the three PGRs in 15 batches of fresh D. officinale and A. roxburghii products were found to be 42.0%-86.8% and 140-289. Full-scan mass spectrometry was used to further identify positive samples to avoid false-positive results and enhance the reliability of the experimental method. In summary, the proposed method is sensitive, accurate, reliable, environment friendly, and capable of high enrichment. It could be used to determine the residues of three acidic PGRs in D. officinale and A. roxburghii. Moreover, it can provide technical support for the residue detection of PGRs in other Chinese medicinal materials.

[三相中空纤维液相微萃取-高效液相色谱法测定 officinale 铁皮石斛和 Anoectochilus roxburghii 中的三种植物生长调节剂]。
当归石斛(Dendrobium officinale)和麝香石竹(Anoectochilus roxburghii)是传统中药的珍贵原料。目前的生产技术无法满足日益增长的需求。因此,出现了大量使用植物生长调节剂(PGRs)进行人工栽培的现象。过量使用 PGRs 不仅会影响药材的质量和药效,还会引发一系列安全问题。因此,扩大对名贵中药材中残留 PGRs 的研究,对避免这些物质对健康造成危害具有重要意义。遗憾的是,由于 PGRs 的痕量和复杂基质,对其进行鉴定具有挑战性。高效液相色谱法(HPLC)已成为测定 PGR 的主流分析方法之一。在应用该技术检测痕量酸性 PGRs 时,一个重要的考虑因素是如何提高其准确性和灵敏度。三相中空纤维液相微萃取(3P-HF-LPME)具有富集系数高、样品净化能力强、试剂消耗少、成本低、易于与色谱系统集成等优点。因此,3P-HF-LPME 方法克服了传统样品前处理方法的诸多缺点。本研究建立了一种基于3P-HF-LPME与高效液相色谱结合的新颖、简便、有效的分析方法,用于提取、纯化、富集和检测D. officinale和A. roxburghii中的3种痕量酸性PGRs(吲哚-3-乙酸、萘乙酸和吲哚丁酸)。为此,对色谱分离条件和 3P-HF-LPME 模型参数进行了系统优化。首先,通过超声波处理和低温静置制备样品溶液,然后用稀盐酸调节 pH 值至 3.0。样品溶液(10 mL)和氯化钠(1.50 g)被储存在一个内置磁力搅拌器的 15 mL 棕色提取瓶中。然后,将 30 μL 的 NaOH 溶液(pH 11.0)作为内相溶液注入中空纤维管的内腔,随后将中空纤维管的两端密封。将中空纤维管在正辛醇中浸泡 5 分钟并自然干燥,以去除其表面多余的萃取溶剂。萃取结束后,采用 Welch Ultimate XB-C18 色谱柱(250 mm×4.6 mm,5 μm),以乙酸水溶液和甲醇(45∶55,v/v)为洗脱剂,在等度洗脱条件下进行分离。结果表明,三种PGRs在0.5-100.0 μg/L范围内线性关系良好(测定系数(r2)=0.9999),检出限(LOD)为0.02-0.15 μg/L。方法回收率为 88.5%-102.2%,相对标准偏差(RSD)小于 3.7%(n=3)。结果表明,在15个批次的新鲜D. officinale和A. roxburghii产品中,3种PGRs的提取效率和富集因子分别为42.0%~86.8%和140~289。采用全扫描质谱法进一步鉴定阳性样品,避免了假阳性结果的出现,提高了实验方法的可靠性。总之,所提出的方法灵敏、准确、可靠、环境友好且富集度高。该方法可用于测定欧当归和罗布麻中三种酸性 PGRs 的残留量。此外,该方法还可为其他中药材中PGRs的残留检测提供技术支持。
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来源期刊
色谱
色谱 CHEMISTRY, ANALYTICAL-
CiteScore
1.30
自引率
42.90%
发文量
7198
期刊介绍: "Chinese Journal of Chromatography" mainly reports the basic research results of chromatography, important application results of chromatography and its interdisciplinary subjects and their progress, including the application of new methods, new technologies, and new instruments in various fields, the research and development of chromatography instruments and components, instrument analysis teaching research, etc. It is suitable for researchers engaged in chromatography basic and application technology research in scientific research institutes, master and doctoral students in chromatography and related disciplines, grassroots researchers in the field of analysis and testing, and relevant personnel in chromatography instrument development and operation units. The journal has columns such as special planning, focus, perspective, research express, research paper, monograph and review, micro review, technology and application, and teaching research.
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