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蒸馏时间作为提高孜然籽油抗疟活性和差异化油成分的工具。

Distillation Time as Tool for Improved Antimalarial Activity and Differential Oil Composition of Cumin Seed Oil.

作者信息

Zheljazkov Valtcho D, Gawde Archana, Cantrell Charles L, Astatkie Tess, Schlegel Vicki

机构信息

Columbia Basin Agricultural Research Center, Oregon State University, 48037 County 788 Road, Adams, Oregon 97810, United States of America.

Natural Products Utilization Research Unit, Agricultural Research Service, United States Department of Agriculture, P.O. Box 8048, University, Mississippi 38677, United States of America.

出版信息

PLoS One. 2015 Dec 7;10(12):e0144120. doi: 10.1371/journal.pone.0144120. eCollection 2015.

Abstract

A steam distillation extraction kinetics experiment was conducted to estimate essential oil yield, composition, antimalarial, and antioxidant capacity of cumin (Cuminum cyminum L.) seed (fruits). Furthermore, regression models were developed to predict essential oil yield and composition for a given duration of the steam distillation time (DT). Ten DT durations were tested in this study: 5, 7.5, 15, 30, 60, 120, 240, 360, 480, and 600 min. Oil yields increased with an increase in the DT. Maximum oil yield (content, 2.3 g/100 seed), was achieved at 480 min; longer DT did not increase oil yields. The concentrations of the major oil constituents α-pinene (0.14-0.5% concentration range), β-pinene (3.7-10.3% range), γ-cymene (5-7.3% range), γ-terpinene (1.8-7.2% range), cumin aldehyde (50-66% range), α-terpinen-7-al (3.8-16% range), and β-terpinen-7-al (12-20% range) varied as a function of the DT. The concentrations of α-pinene, β-pinene, γ-cymene, γ-terpinene in the oil increased with the increase of the duration of the DT; α-pinene was highest in the oil obtained at 600 min DT, β-pinene and γ-terpinene reached maximum concentrations in the oil at 360 min DT; γ-cymene reached a maximum in the oil at 60 min DT, cumin aldehyde was high in the oils obtained at 5-60 min DT, and low in the oils obtained at 240-600 min DT, α-terpinen-7-al reached maximum in the oils obtained at 480 or 600 min DT, whereas β-terpinen-7-al reached a maximum concentration in the oil at 60 min DT. The yield of individual oil constituents (calculated from the oil yields and the concentration of a given compound at a particular DT) increased and reached a maximum at 480 or 600 min DT. The antimalarial activity of the cumin seed oil obtained during the 0-5 and at 5-7.5 min DT timeframes was twice higher than the antimalarial activity of the oils obtained at the other DT. This study opens the possibility for distinct marketing and utilization for these improved oils. The antioxidant capacity of the oil was highest in the oil obtained at 30 min DT and lowest in the oil from 360 min DT. The Michaelis-Menton and the Power nonlinear regression models developed in this study can be utilized to predict essential oil yield and composition of cumin seed at any given duration of DT and may also be useful to compare previous reports on cumin oil yield and composition. DT can be utilized to obtain cumin seed oil with improved antimalarial activity, improved antioxidant capacity, and with various compositions.

摘要

进行了水蒸气蒸馏提取动力学实验,以评估孜然(Cuminum cyminum L.)种子(果实)的精油产量、成分、抗疟和抗氧化能力。此外,还建立了回归模型,以预测给定水蒸气蒸馏时间(DT)下的精油产量和成分。本研究测试了10个DT时长:5、7.5、15、30、60、120、240、360、480和600分钟。精油产量随DT的增加而增加。在480分钟时达到最大精油产量(含量为2.3克/100粒种子);更长的DT并没有增加精油产量。主要油成分α-蒎烯(浓度范围为0.14 - 0.5%)、β-蒎烯(3.7 - 10.3%范围)、γ-伞花烃(5 - 7.3%范围)、γ-萜品烯(1.8 - 7.2%范围)、孜然醛(50 - 66%范围)、α-萜品烯-7-醛(3.8 - 16%范围)和β-萜品烯-7-醛(12 - 20%范围)的浓度随DT而变化。油中α-蒎烯、β-蒎烯、γ-伞花烃、γ-萜品烯的浓度随DT时长的增加而增加;α-蒎烯在600分钟DT时获得的油中含量最高,β-蒎烯和γ-萜品烯在DT为360分钟时在油中达到最大浓度;γ-伞花烃在DT为60分钟时在油中达到最大值,孜然醛在5 - 60分钟DT时获得的油中含量高,在240 - 600分钟DT时获得的油中含量低,α-萜品烯-7-醛在480或600分钟DT时获得的油中达到最大值,而β-萜品烯-7-醛在DT为60分钟时在油中达到最大浓度。各个油成分的产量(根据特定DT下的油产量和给定化合物浓度计算)在480或600分钟DT时增加并达到最大值。在0 - 5和5 - 7.5分钟DT时间段内获得的孜然籽油的抗疟活性比在其他DT下获得的油的油的抗疟活性高两倍。这项研究为这些改良油的独特营销和利用开辟了可能性。油的抗氧化能力在DT为30分钟时获得的油中最高,在360分钟DT时获得的油中最低。本研究中建立的米氏(Michaelis-Menton)和幂非线性回归模型可用于预测任何给定DT时长下孜然种子的精油产量和成分,也可能有助于比较之前关于孜然油产量和成分的报告。DT可用于获得具有改善抗疟活性、改善抗氧化能力和各种成分的孜然籽油。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a77/4671617/30c371716dcf/pone.0144120.g001.jpg

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