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Bioactives from Crude Rice Bran Oils Extracted Using Green Technology

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2023 Mar 29
PMID 36985429
Authors
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Abstract

Crude rice bran oils from different rice cultivars and extraction methods bear different contents of nutraceuticals. The health benefits of lowering cholesterol activity of rice bran oil being confirmed by many reports are partly attributed to non-nutrient nutraceuticals, especially γ-oryzanol, phytosterols, and policosanols. As the world has been facing the global warming crisis, green extraction technology is gaining attention from many sectors. The current study aims to compare the nutraceutical composition with respect to γ-oryzanol, phytosterol, and policosanol content as well as the antioxidant properties of crude rice bran oils extracted from white and red rice bran using three green technologies, comparing with conventional hexane extraction. The data show that the traditional solvent extraction gave the highest oil yield percentage (26%), but it was not significantly different from subcritical liquefied dimethyl ether extraction (24.6%). Subcritical liquefied dimethyl ether extraction gave higher oil yield than supercritical CO extraction (15.5-16.2%). The crude rice bran oil extracted using subcritical liquefied dimethyl ether extraction produced the highest total phenolic contents and antioxidant activities. The highest γ-oryzanol content of the crude rice bran oil was found in oil extracted by conventional cold press (1370.43 mg/100 g). The γ-oryzanol content of the oil obtained via subcritical liquefied dimethyl ether extraction was high (1213.64 mg/100 g) compared with supercritical CO extraction. The red rice bran yielded the crude rice bran oil with the highest total phytosterol content compared with the white bran, and the oil from red rice bran extracted with subcritical liquefied dimethyl ether generated the highest total phytosterol content (1784.17 mg/100 g). The highest policosanol content (274.40 mg/100 g) was also found in oil obtained via subcritical liquefied dimethyl ether extraction.

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References
1.
Huang Y, Lai H . Bioactive compounds and antioxidative activity of colored rice bran. J Food Drug Anal. 2017; 24(3):564-574. PMC: 9336675. DOI: 10.1016/j.jfda.2016.01.004. View

2.
Laokuldilok T, Shoemaker C, Jongkaewwattana S, Tulyathan V . Antioxidants and antioxidant activity of several pigmented rice brans. J Agric Food Chem. 2010; 59(1):193-9. DOI: 10.1021/jf103649q. View

3.
Delrue F, Setier P, Sahut C, Cournac L, Roubaud A, Peltier G . An economic, sustainability, and energetic model of biodiesel production from microalgae. Bioresour Technol. 2012; 111:191-200. DOI: 10.1016/j.biortech.2012.02.020. View

4.
Fang Y, Gu S, Liu S, Zhang J, Ding Y, Liu J . Extraction of oil from high-moisture tuna liver by subcritical dimethyl ether: feasibility and optimization by the response surface method. RSC Adv. 2022; 8(5):2723-2732. PMC: 9077579. DOI: 10.1039/c7ra12948c. View

5.
Peinado C, Liuzzi D, Ladera-Gallardo R, Retuerto M, Ojeda M, Pena M . Effects of support and reaction pressure for the synthesis of dimethyl ether over heteropolyacid catalysts. Sci Rep. 2020; 10(1):8551. PMC: 7244519. DOI: 10.1038/s41598-020-65296-3. View