Exploring microbial and moist-heat effects on Pu-erh tea volatiles and understanding the methoxybenzene formation mechanism using molecular sensory science

Piling fermentation (PF) is crucial for Pu-erh tea aroma, yet its microbial and moist-heat impact on aroma quality is poorly understood. Solid-phase microextraction, solvent-assisted flavor evaporation, and gas chromatography–mass spectrometry were used to detected and analyses the samples of sun-gr...

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Veröffentlicht in:Food Chemistry: X 2024-10, Vol.23, p.101553, Article 101553
Hauptverfasser: Li, Tiehan, Wei, Yuming, Lu, Mingxia, Wu, Yida, Jiang, Yanqun, Ke, Han, Shao, Aiju, Ning, Jingming
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Sprache:eng
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Zusammenfassung:Piling fermentation (PF) is crucial for Pu-erh tea aroma, yet its microbial and moist-heat impact on aroma quality is poorly understood. Solid-phase microextraction, solvent-assisted flavor evaporation, and gas chromatography–mass spectrometry were used to detected and analyses the samples of sun-green green tea, sterile PF and spontaneous PF. Microbiological action promotes the formation of stale aromas. Moist-heat action promotes the formation of plum-fragrance and sweet aroma. 20 microbial markers and 28 moist-heat markers were screened from 184 volatile components. Combining odor activity values and gas chromatography-olfactometry, 22 aroma-active compounds were screened (1,2,3-trimethoxybenzene, linalool, 1,2,4-trimethoxybenzene …), and analyzed during PF processing. Aroma omission and addition experiments verified its importance. Gallic acid addition experiments successfully verified that microorganisms are the main contributors to the synthesis of methoxybenzenes. Finally, Blastobotrys, Rasamsonia, and Thermomyces showed positive correlation with the synthesis of 1-ethyl-4-methoxybenzene, 1,2,4-trimethoxybenzene, 1,2,3-trimethoxybenzene, and 1,2-dimethoxybenzene. The formation mechanism of Pu-erh tea's aroma was clarified. Exploring microbial and moist-heat effects on Pu-erh tea volatiles and understanding the methoxybenzene formation mechanism using molecular sensory science. [Display omitted] •Investigating moisture-heat and microbial impact on Pu-erh tea aroma quality.•16 microbial markers and 22 aroma-active compounds were screened.•Novel discovery: Microbes heavily impact methoxybenzene metabolic pathways.•Synthesis of methoxybenzenes was proved by gallic acid addition simulations.•Blastobotrys, Rasamsonia and Thermomyces were directly linked to aroma synthesis.
ISSN:2590-1575
2590-1575
DOI:10.1016/j.fochx.2024.101553