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Rana chensinensis Ovum Oil Based on CO2 Supercritical Fluid Extraction: Response Surface Methodology Optimization and Unsaturated Fatty Acid Ingredient Analysis

机译:Rana Chensinensisis obum油基于CO2超临界流体提取:响应面方法优化和不饱和脂肪酸成分分析

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摘要

Rana chensinensis ovum oil (RCOO) is an emerging source of unsaturated fatty acids (UFAs), but it is lacking in green and efficient extraction methods. In this work, using the response surface strategy, we developed a green and efficient CO2 supercritical fluid extraction (CO2-SFE) technology for RCOO. The response surface methodology (RSM), based on the Box–Behnken Design (BBD), was used to investigate the influence of four independent factors (pressure, flow, temperature, and time) on the yield of RCOO in the CO2-SFE process, and UPLC-ESI-Q-TOP-MS and HPLC were used to identify and analyze the principal UFA components of RCOO. According to the BBD response surface model, the optimal CO2-SFE condition of RCOO was pressure 29 MPa, flow 82 L/h, temperature 50 °C, and time 132 min, and the corresponding predicted optimal yield was 13.61%. The actual optimal yield obtained from the model verification was 13.29 ± 0.37%, and the average error with the predicted value was 0.38 ± 0.27%. The six principal UFAs identified in RCOO included eicosapentaenoic acid (EPA), α-linolenic acid (ALA), docosahexaenoic acid (DHA), arachidonic acid (ARA), linoleic acid (LA), and oleic acid (OA), which were important biologically active ingredients in RCOO. Pearson correlation analysis showed that the yield of these UFAs was closely related to the yield of RCOO (the correlation coefficients were greater than 0.9). Therefore, under optimal conditions, the yield of RCOO and principal UFAs always reached the optimal value at the same time. Based on the above results, this work realized the optimization of CO2-SFE green extraction process and the confirmation of principal bioactive ingredients of the extract, which laid a foundation for the green production of RCOO.
机译:林蛙卵油(RCOO)是不饱和脂肪酸(UFAS)一个新兴的源,但它缺乏绿色高效提取方法。在这项工作中,采用响应曲面策略,我们开发了一个绿色,高效的超临界CO2流体萃取(CO2-SFE)技术RCOO。的响应面分析(RSM)的基础上,箱Behnken法设计(BBD),用于研究关于RCOO中的CO2-SFE工序的成品率的四个独立的因素(压力,流量,温度和时间)的影响和UPLC-ESI-Q-TOP-MS和HPLC用于鉴定和分析RCOO的主要UFA组件。根据BBD响应曲面模型,RCOO的最佳CO2-SFE条件为压力29兆帕,流量82升/小时,温度50℃,时间132分钟,和相应的预测的最佳产率是13.61%。从模型中验证所获得的实际的最佳产率是13.29±0.37%,并与预测值的平均误差为0.38±0.27%。在RCOO确定的六个主要UFAS包括二十碳五烯酸(EPA),α亚麻酸(ALA),二十二碳六烯酸(DHA),花生四烯酸(ARA),亚油酸(LA),和油酸(OA),这是重要在RCOO生物活性成分。 Pearson相关分析表明,这些UFAS的产量密切相关RCOO的产量(相关系数均大于0.9)。因此,在最佳条件下,RCOO和主UFAS的产率始终达到在同一时间的最佳值。基于上述结果,这项工作实现CO2-SFE绿色提取工艺的优化和提取物,这对于绿色生产RCOO奠定了基础的主要生物活性成分的确认。

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