Analysis of Volatile Component Variations in Coptidis Rhizoma Processed with Euodiae Fructus Juice by HS-SPME-GC-MS Combined with Chemometrics and ROAV
10.13422/j.cnki.syfjx.20260768
- VernacularTitle:HS-SPME-GC-MS结合化学计量学与ROAV分析吴茱萸汁炙黄连过程中挥发性成分的变化
- Author:
Lin YAN
1
;
Yun WANG
1
;
Puling LI
2
;
Lingbang MENG
1
;
Zhe JIA
1
;
Ying LI
3
;
Ying LIU
1
;
Min JIN
3
;
Cun ZHANG
1
Author Information
1. State Key Laboratory for Quality Ensurance and Sustainable Use of Dao-di Herbs,Institute of Chinese Materia Medica,China Academy of Chinese Medical Sciences,Beijing 100700,China
2. Beijing Jiakesi New Drug Development Co. Ltd.,Beijing 101111,China
3. Guang'anmen Hospital,China Academy of Chinese Medical Sciences,Beijing 100053,China
- Publication Type:Journal Article
- Keywords:
Coptidis Rhizoma;
Euodiae Fructus;
processing;
headspace solid-phase microextraction coupled with gas chromatography-quadrupole-time-of-flight mass spectrometry (HS-SPME-GC-Q-TOF-MS);
chemometrics;
volatile components;
relative odor activity value (ROAV)
- From:
Chinese Journal of Experimental Traditional Medical Formulae
2026;32(21):218-225
- CountryChina
- Language:Chinese
-
Abstract:
ObjectiveTo analyze the volatile components in raw Coptidis Rhizoma, Euodiae Fructus juice-processed Coptidis Rhizoma (Yuhuanglian), and the processing adjuvant Euodiae Fructus juice, identify marker volatile components in the processed product, and elucidate the material basis changes during the processing with Euodiae Fructus juice. MethodsHeadspace solid-phase microextraction coupled with gas chromatography-quadrupole-time-of-flight mass spectrometry (HS-SPME-GC-Q-TOF-MS) was employed to analyze the volatile components in raw Coptidis Rhizoma, Yuhuanglian, and Euodiae Fructus juice. Chemometric analysis was performed to compare volatile components among samples and screen the marker components. Finally, the relative odor activity value (ROAV) was calculated to investigate odor characteristics. ResultsA total of 127 components were detected, with 27, 75, 84 volatile components identified in Euodiae Fructus juice, raw Coptidis Rhizoma, and Yuhuanglian, respectively. Processing with Euodiae Fructus juice significantly increased the number and content of volatile components. Chemometric analysis revealed significant changes in volatile components among the three sample types, allowing clear discrimination. After processing, 39 components such as methyl octanoate and allyl propionate were introduced, while 34 components including furfural and hexanoic acid increased in content, and 11 components including butyric acid and octanal decreased. Additionally, eight components, including zingiberene, 6-methyl-6-hepten-2-one, and 5-methyl-2-hexanone, were screened as marker components of Yuhuanglian. Moreover, processing enhanced the ROAV values of 2,5-dimethylpyrazine (roasted, nutty, coffee-like aroma), 3-ethylphenol, and guaiacol (smoky, woody aroma). Additionally, it incorporated 1-hepten-3-one from Euodiae Fructus juice and the newly generated 1-hexen-3-one, contributing mushroom and cucumber-like odors. The sensory profile of Yuhuanglian integrated nutty, roasted, smoky, and woody notes with the citrus and fruity aroma originally contributed by octanal. ConclusionThe processing with Euodiae Fructus juice introduced components from adjuvant, significantly altering the volatile component profile and enhancing the sensory odor characteristics of Yuhuanglian. This study provides a valuable reference for exploring the material basis of volatile components and establishing processing specifications for Yuhuanglian.