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一种可持续的方法,该方法采用红龙果皮提取物作为荧光探针来检测食品样品中的靛蓝胭脂红(E132):对该方法的绿色度、白度和蓝度的评估。

A sustainable methodology employing the extract of red dragon fruit peel as a fluorescence probe for detection of indigo carmine (E132) in food samples: evaluation of the method's greenness, whiteness, and blueness.

作者信息

Salem AlSalem Huda, Alharbi Sara Naif, Al-Goul Soha Talal, Katamesh Noha S, Abdel-Lateef Mohamed A

机构信息

Department of Chemistry, College of Science, Princess Nourah bint Abdulrahman University P.O. Box 84428 Riyadh 11671 Saudi Arabia.

Department of Chemistry, College of Sciences & Arts, King Abdulaziz University Rabigh 21911 Saudi Arabia.

出版信息

RSC Adv. 2024 Jul 31;14(33):24010-24018. doi: 10.1039/d4ra02613f. eCollection 2024 Jul 26.

DOI:10.1039/d4ra02613f
PMID:39086526
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11290330/
Abstract

Indigo carmine dye is one of the most widely used dyes in various fields. In this study, the ethanolic extract of red dragon fruit peel (Ex-RDFP) was employed as a green fluorescence probe for measuring the synthetic dye indigo carmine. At a fluorescence excitation of 290.5 nm, the Ex-RDFP exhibits a fluorescence emission band at 341.5 nm. Meanwhile, the indigo carmine dye possesses an absorption spectrum at a maximum peak of 290 nm. Consequently, the fluorescence intensity of the Ex-RDFP was reduced upon the addition of indigo carmine solution due to the inner filter effect mechanism. This quenching in the fluorescence intensity of Ex-RDFP was substantially associated with the indigo carmine concentration at a linear scale of 1.0-7.0 μg mL ( = 0.9993). Furthermore, the limit of detection and the limit of quantitation of the method were found to be 0.209 μg mL and 0.635 μg mL, respectively. The optimal analytical conditions, such as solvent used for dilution, pH, reaction time, volume of the reagent, and temperature, were examined and carefully studied. In addition, the proposed method was successfully applied to detect indigo carmine dye in various natural syrup samples, including lemon syrup, apple syrup, cantaloupe syrup, pineapple syrup, and guava syrup, with acceptable recovery values. The method's beneficial sustainability footprint was found by using an extensive greenness analysis that incorporated the modified National Environmental Methods Index (NEMI), the complex Green Analytical Procedure Index (GAPI), and the Analytical Greenness Calculator (AGREE) prep algorithms. In addition, "whiteness" and "blueness" were also assessed with the newly released (Red Green Blue 12) RGB12 and Blue Applicability Grade Index (BAGI) computational methods, emphasizing the benefit of the proposed method in terms of analytical efficiency, sustainability, and economy. The suggested technique is the answer to the worldwide popularity of ecologically conscious solutions by providing a green-and-white substitute for traditional techniques and advancing towards creating more sustainable quality control procedures in the future.

摘要

靛蓝胭脂红染料是各个领域中使用最广泛的染料之一。在本研究中,火龙果红色果皮乙醇提取物(Ex-RDFP)被用作测量合成染料靛蓝胭脂红的绿色荧光探针。在290.5nm的荧光激发下,Ex-RDFP在341.5nm处呈现荧光发射带。同时,靛蓝胭脂红染料在290nm的最大峰值处具有吸收光谱。因此,由于内滤效应机制,加入靛蓝胭脂红溶液后Ex-RDFP的荧光强度降低。Ex-RDFP荧光强度的这种猝灭与靛蓝胭脂红浓度在1.0 - 7.0μg/mL的线性范围内显著相关(r = 0.9993)。此外,该方法的检测限和定量限分别为0.209μg/mL和0.635μg/mL。对最佳分析条件进行了研究,包括用于稀释的溶剂、pH值、反应时间、试剂体积和温度等。此外,所提出的方法成功应用于检测各种天然糖浆样品中的靛蓝胭脂红染料,包括柠檬糖浆、苹果糖浆、哈密瓜糖浆、菠萝糖浆和番石榴糖浆,回收率值可接受。通过广泛的绿色度分析发现了该方法有益的可持续性足迹,该分析纳入了改进的国家环境方法指数(NEMI)、综合绿色分析程序指数(GAPI)和分析绿色度计算器(AGREE)预算法。此外,还使用新发布的(红绿蓝12)RGB12和蓝色适用性等级指数(BAGI)计算方法评估了“白度”和“蓝度”,强调了所提出方法在分析效率、可持续性和经济性方面的优势。所建议的技术通过为传统技术提供绿色和白色替代方案,并朝着未来创建更可持续的质量控制程序迈进,为全球对生态友好解决方案的普及提供了答案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/b004f9605de7/d4ra02613f-f4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/e7428073a92e/d4ra02613f-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/1ec2bd8bbdb9/d4ra02613f-f2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/fc31b0de0905/d4ra02613f-f3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/b004f9605de7/d4ra02613f-f4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/e7428073a92e/d4ra02613f-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/1ec2bd8bbdb9/d4ra02613f-f2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/fc31b0de0905/d4ra02613f-f3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1046/11290330/b004f9605de7/d4ra02613f-f4.jpg

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