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Volatile Constituents of Some Myrtaceous Edible and Medicinal Fruits from the Brazilian Amazon

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Journal Foods
Specialty Biotechnology
Date 2024 May 25
PMID 38790790
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Abstract

Native and exotic fruits from the Amazon have varied characteristics, with aroma being a decisive factor in their acceptance for medicinal use as a nutraceutical supplement. This work aimed to analyze the chemical constituents of the volatile concentrates of some Myrtaceous fruit species sampled in the Brazilian Amazon. The fruit's pulps were subjected to simultaneous distillation-extraction, and gas chromatography-mass spectrometry was used to analyze their volatile chemical composition. In the volatile concentrate of (Araçá-boi) α-pinene (17.5%), citronellyl butanoate (15.6%), and pogostol (13.5%) were identified as primary constituents; (Ginja) concentrate comprised curzerene (30.5%), germacrone (15.4%), atractylone (13.1%), and ()-β-ocimene (11.1%); in (Camu-Camu), α-pinene (55.8%), ()-β-ocimene (13.1%), and α-terpineol (10.0%) were present; in (Goiaba) were (2)-hexenal (21.7%), hexanal (15.4%), caryophylla-4(12),8(13)-dien-5-β-ol (10.5%), caryophyllene oxide (9.2%), and pogostol (8.3%); and in (Araçá), limonene (25.2%), ethyl butanoate (12.1%), epi-β-bisabolol (9.8%), and α-pinene (9.2%) were the main constituents. The analyzed volatile concentrates of these fruit species presented a significant diversity of constituents with a predominance of functional groups, such as monoterpenes, sesquiterpenes, and fatty acid derivatives, originating from the plant's secondary metabolism and playing an important role in their nutritional and medicinal uses.

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.
Mostafa S, Wang Y, Zeng W, Jin B . Floral Scents and Fruit Aromas: Functions, Compositions, Biosynthesis, and Regulation. Front Plant Sci. 2022; 13:860157. PMC: 8961363. DOI: 10.3389/fpls.2022.860157. View

3.
Romero H, Pott D, Vallarino J, Osorio S . Metabolomics-Based Evaluation of Crop Quality Changes as a Consequence of Climate Change. Metabolites. 2021; 11(7). PMC: 8303867. DOI: 10.3390/metabo11070461. View

4.
VANDENDOOL H, KRATZ P . A GENERALIZATION OF THE RETENTION INDEX SYSTEM INCLUDING LINEAR TEMPERATURE PROGRAMMED GAS-LIQUID PARTITION CHROMATOGRAPHY. J Chromatogr. 1963; 11:463-71. DOI: 10.1016/s0021-9673(01)80947-x. View

5.
Dos Santos C, Sampaio M, Vandesmet L, Dos Santos B, de Menezes S, Portela B . Chemical composition and biological activities of the essential oil from McVaugh leaves. Nat Prod Res. 2022; 37(22):3844-3850. DOI: 10.1080/14786419.2022.2151008. View