Huamán-Castilla Nils Leander, Gajardo-Parra Nicolás, Pérez-Correa José R, Canales Roberto I, Martínez-Cifuentes Maximiliano, Contreras-Contreras Gabriela, Mariotti-Celis María Salomé
Escuela de Ingeniería Agroindustrial, Universidad Nacional de Moquegua, Prolongación Calle Ancash s/n, Moquegua 18001, Peru.
Chemical and Bioprocess Engineering Department, School of Engineering, Pontificia Universidad Católica de Chile, Vicuña Mackenna 4860, P.O. Box 306, Santiago 7820436, Chile.
Antioxidants (Basel). 2023 Jul 18;12(7):1446. doi: 10.3390/antiox12071446.
Deep eutectic solvents (DES) are emerging as potent polyphenol extractors under normal atmospheric conditions. Yet, their effectiveness in hot pressurized liquid extraction (HPLE) must be studied more. We explored the ability of various water/DES and water/hydrogen bond donors (HBDs) mixtures in both atmospheric solid liquid extraction (ASLE) and HPLE (50%, 90 °C) for isolating specific polyphenol families from Carménère grape pomace. We assessed extraction yields based on total polyphenols, antioxidant capacity, and recovery of targeted polyphenols. The HBDs ethylene glycol and glycerol outperformed DES in atmospheric and pressurized extractions. Ethylene glycol exhibited a higher affinity for phenolic acids and flavonols, while flavanols preferred glycerol. Quantum chemical computations indicated that a high-water content in DES mixtures led to the formation of new hydrogen bonds, thereby reducing polyphenol-solvent interactions. HPLE was found to be superior to ASLE across all tested solvents. The elevated pressure in HPLE has caused significant improvement in the recovery of flavanols (17-89%), phenolic acids (17-1000%), and flavonols (81-258%). Scanning electron microscopy analysis of post-extraction residues suggested that high pressures collapse the plant matrix, thus easing polyphenol release.
在正常大气条件下,深共熔溶剂(DES)正成为高效的多酚萃取剂。然而,它们在热压液体萃取(HPLE)中的有效性仍需进一步研究。我们探究了各种水/DES和水/氢键供体(HBDs)混合物在常压固液萃取(ASLE)和HPLE(50%,90°C)中从佳美娜葡萄渣中分离特定多酚家族的能力。我们基于总多酚、抗氧化能力和目标多酚的回收率评估了萃取产率。在常压和加压萃取中,HBDs乙二醇和甘油的表现优于DES。乙二醇对酚酸和黄酮醇表现出更高的亲和力,而黄烷醇则更倾向于甘油。量子化学计算表明,DES混合物中的高含水量导致形成新的氢键,从而减少了多酚与溶剂之间的相互作用。发现在所有测试溶剂中,HPLE均优于ASLE。HPLE中的高压显著提高了黄烷醇(17 - 89%)、酚酸(17 - 1000%)和黄酮醇(81 - 258%)的回收率。萃取后残渣的扫描电子显微镜分析表明,高压使植物基质塌陷,从而便于多酚释放。