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Fruit Quality and Volatile Constituents of a New Very Early-ripening Pummelo () Cultivar 'Liuyuezao'

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Journal Front Plant Sci
Date 2023 Jan 26
PMID 36699855
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Abstract

'Liuyuezao' (LYZ) pummelo () originated from a spontaneous bud sport on a 'Guanxi' (GXB) pummelo tree and was released as a new very early-season cultivar. The objective of this study was to present the sensory and nutritional profiles of LYZ fruits, and compare it with other major commercialized pummelo cultivars including GXB, 'Sanhong' (SH) and 'Hongrou' (HR). LYZ had higher contents of organic acids (12.01 mg/g), phenols (669.01 mg/L), vitamin C (75.73 mg/100 mL) and stronger antioxidant capacity (77.65 mg/100 mL) but lower levels of soluble sugars (62.85 mg/g), carotenoids (0.25 mg/L) and flavonoids (46.3 mg/L) when compared to the other pummelos. Moreover, a smaller number (49) and much less content (7.63) of fruit volatiles were detected in LYZ than them in GXB, SH and HR. The relatively high levels of fructose (20.6 mg/g) and organic acids and low levels of volatile compounds in LYZ mainly contributed to its sweet and mildly sour taste and moderate aroma of pummelo note. LYZ is presented as an alternative pummelo cultivar with the potential for commercialization.

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References
1.
Goff S, Klee H . Plant volatile compounds: sensory cues for health and nutritional value?. Science. 2006; 311(5762):815-9. DOI: 10.1126/science.1112614. View

2.
Hiromi K, Kuwamoto C, Ohnishi M . A rapid sensitive method for the determination of ascorbic acid in the excess of 2,6-dichlorophenolindophenol using a stopped-flow apparatus. Anal Biochem. 1980; 101(2):421-6. DOI: 10.1016/0003-2697(80)90208-0. View

3.
Kim S, Chen J, Cheng T, Gindulyte A, He J, He S . PubChem in 2021: new data content and improved web interfaces. Nucleic Acids Res. 2020; 49(D1):D1388-D1395. PMC: 7778930. DOI: 10.1093/nar/gkaa971. View

4.
Miyazaki T, Plotto A, Goodner K, Gmitter Jr F . Distribution of aroma volatile compounds in tangerine hybrids and proposed inheritance. J Sci Food Agric. 2011; 91(3):449-60. DOI: 10.1002/jsfa.4205. View

5.
Baldwin E, Goodner K, Plotto A . Interaction of volatiles, sugars, and acids on perception of tomato aroma and flavor descriptors. J Food Sci. 2009; 73(6):S294-307. DOI: 10.1111/j.1750-3841.2008.00825.x. View