Differences of characteristic aroma compounds in


Journal

Food & function
ISSN: 2042-650X
Titre abrégé: Food Funct
Pays: England
ID NLM: 101549033

Informations de publication

Date de publication:
08 Jun 2021
Historique:
pubmed: 17 4 2021
medline: 18 11 2021
entrez: 16 4 2021
Statut: ppublish

Résumé

Roasting, an important process to refine Wuyi Rock tea, could impart different types of aroma to the final products. This study focuses on the differences in aroma characteristics among three kinds of refined teas, named light fire (LF), moderate fire (MF), and high fire (HF). A combination of solid phase microextraction (SPME) and a switchable system between GC-O-MS and GC × GC-O-MS was utilized to identify the odorants. In total, 97 aroma-active compounds could be smelled at the sniffing port, comprising alcohols, aldehydes, ketones, esters, heterocycles, and terpenes. However, only 52 obtained r-OAV >1. Significant differences were uncovered by the application of principal component analysis (PCA) and partial least squares regression (PLSR). Thereby, MF and HF had a more similar aroma profile, while in LF samples, alcohols, aliphatic aldehydes and some ketones were responsible for the aroma profile, such as (E,E)-2,4-hexadienal, octanal, hexanal, (E,Z)-2,6-nonadienal, (E)-β-ionone, 3-octen-2-one etc. Strecker aldehydes had a great impact on the aroma of MF, including 2-methylpropanal, 2-methylbutanal, 3-methylbutanal etc. Some N-heterocyclic compounds also affected the overall aroma, for instance, 6-methyl-2-ethylpyrazine. In HF, the majority of aroma compounds increased with increasing roasting temperature, especially N-heterocyclic compounds as well as furfural and 5-methyl-2-furancarboxaldehyde, which are all closely related to the Maillard reaction. Besides, 5-methyl-2-(1-methylethenyl)-4-hexen-1-ol, trans-linalooloxide and 2-nonanone also remarkably influenced the aroma of HF. In addition, it was supposed that most amino acids that participated in the Maillard reaction during roasting were decomposed from the compounds that combined with tea polyphenols and amino acids.

Identifiants

pubmed: 33861271
doi: 10.1039/d1fo00165e
doi:

Substances chimiques

Alcohols 0
Aldehydes 0
Norisoprenoids 0
Polyphenols 0
Tea 0
Volatile Organic Compounds 0
2-methylbutanal 47H597M1YY
isovalerylaldehyde 69931RWI96
n-hexanal 9DC2K31JJQ
beta-ionone A7NRR1HLH6
isobutyraldehyde C42E28168L
caprylic aldehyde XGE9999H19

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

4797-4807

Auteurs

Ping Yang (P)

Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Research Center for Food Additive Engineering Technology, Laboratory of Molecular Sensory Science, Beijing Technology and Business University (BTBU), Beijing, 100048, China. songhl@th.btbu.edu.cn.

Huanlu Song (H)

Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Research Center for Food Additive Engineering Technology, Laboratory of Molecular Sensory Science, Beijing Technology and Business University (BTBU), Beijing, 100048, China. songhl@th.btbu.edu.cn.

Yanping Lin (Y)

College of Tea and Food Science, Wuyi University, Wuyishan, 354300, China.

Tianyang Guo (T)

Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Research Center for Food Additive Engineering Technology, Laboratory of Molecular Sensory Science, Beijing Technology and Business University (BTBU), Beijing, 100048, China. songhl@th.btbu.edu.cn.

Lijin Wang (L)

Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Research Center for Food Additive Engineering Technology, Laboratory of Molecular Sensory Science, Beijing Technology and Business University (BTBU), Beijing, 100048, China. songhl@th.btbu.edu.cn.

Michael Granvogl (M)

Fachgebiet Lebensmittelchemie und Analytische Chemie (170a), Fakultät für Naturwissenschaften, Institut für Lebensmittelchemie, Universität Hohenheim, 70599 Stuttgart, Germany.

Yongquan Xu (Y)

National Engineering Research Center for Tea Industry, Chinese Academy of Agricultural Sciences Tea Research Institute, 9 South Meiling Road, Hangzhou 310008, China. yqx33@126.com.

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