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Biokinetics of microbial consortia using biogenic sulfur as a novel electron donor for sustainable denitrification.利用生物成因硫作为新型电子供体的微生物群落生物动力学,实现可持续的反硝化作用。
Bioresour Technol. 2018 Dec;270:359-367. doi: 10.1016/j.biortech.2018.09.044. Epub 2018 Sep 11.
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Repeated transfer enriches highly active electrotrophic microbial consortia on biocathodes in microbial fuel cells.重复传代可在微生物燃料电池的生物阴极上富集高活性电化学生物群落。
Biosens Bioelectron. 2018 Dec 15;121:118-124. doi: 10.1016/j.bios.2018.08.066. Epub 2018 Aug 31.
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Disambiguation of Isomeric Procyanidins with Cyclic B-Type and Non-cyclic A-Type Structures from Wine and Peanut Skin with HPLC-HDX-HRMS/MS.利用高效液相色谱-高分辨质谱联用技术对葡萄酒和花生皮中环型 B 型和非环型 A 型结构的同型儿茶素进行解析。
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Designing microbial consortia with defined social interactions.设计具有明确社会相互作用的微生物群落。
Nat Chem Biol. 2018 Aug;14(8):821-829. doi: 10.1038/s41589-018-0091-7. Epub 2018 Jun 25.
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Peanut flour aggregation with polyphenolic extracts derived from peanut skin inhibits IgE binding capacity and attenuates RBL-2H3 cells degranulation via MAPK signaling pathway.花生蛋白粉与花生皮多酚提取物的聚集作用抑制 IgE 结合能力,并通过 MAPK 信号通路减弱 RBL-2H3 细胞脱颗粒。
Food Chem. 2018 Oct 15;263:307-314. doi: 10.1016/j.foodchem.2018.05.007. Epub 2018 May 3.
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Interactions between surfactants and hydrolytic enzymes.表面活性剂与水解酶之间的相互作用。
Colloids Surf B Biointerfaces. 2018 Aug 1;168:169-177. doi: 10.1016/j.colsurfb.2017.12.002. Epub 2017 Dec 5.
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Purification and Identification of Membrane Proteins from Urinary Extracellular Vesicles using Triton X-114 Phase Partitioning.使用 Triton X-114 相分离法从尿液细胞外囊泡中纯化和鉴定膜蛋白。
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Determination of phenolic compounds content and antioxidant activity in skin, pulp, seed, cane and leaf of five native grape cultivars in West Azerbaijan province, Iran.伊朗东阿塞拜疆省五种本土葡萄品种的果皮、果肉、种子、果梗和叶片中酚类化合物含量和抗氧化活性的测定。
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Neuroprotective effect of resveratrol against prenatal stress induced cognitive impairment and possible involvement of Na(+), K(+)-ATPase activity.白藜芦醇对产前应激诱导的认知障碍的神经保护作用及对 Na(+),K(+)-ATP 酶活性的可能影响。
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10
Evaluation of hypolipidemic effects of peanut skin-derived polyphenols in rats on Western-diet.评价花生皮多酚对西方饮食诱导大鼠的降血脂作用。
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使用固定在纤维素上的微生物群落的超声辅助表面活性剂水体系,对花生皮中白藜芦醇进行生物转化和提取的强化可持续预处理。

Enhanced and sustainable pretreatment for bioconversion and extraction of resveratrol from peanut skin using ultrasound-assisted surfactant aqueous system with microbial consortia immobilized on cellulose.

作者信息

Jin Shuang, Gao Mengmeng, Kong Wentao, Yang Bingyou, Kuang Haixue, Yang Bo, Fu Yujie, Cheng Yupeng, Li Huiling

机构信息

College of Pharmacy, Heilongjiang University of Chinese Medicine, Harbin, 150040 People's Republic of China.

Key Laboratory of Chinese Materia Medica, Ministry of Education, Harbin, 150040 People's Republic of China.

出版信息

3 Biotech. 2020 Jul;10(7):293. doi: 10.1007/s13205-020-02287-1. Epub 2020 Jun 8.

DOI:10.1007/s13205-020-02287-1
PMID:32550111
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7280398/
Abstract

In this study, the ultrasound-assisted surfactant aqueous system coupled with microbial consortia immobilized by cellulose has been created as an enhanced and sustainable method for the bioconversion and extraction of resveratrol from peanut skin. Based on central composite design, and several single-factor experiments, we derived the optimal bioconversion and extraction system. Microbial consortia consist of CICC 1912, 3.951 and 3.3148 were chosen to be immobilized using cellulose. Other treatment conditions include concentration of surfactant as 3% (w/v), temperature as 30 °C, time as 36 h, ultrasonic power as 250 W and liquid to solid ratio as 25:1 mL/g. Under these conditions, we achieved a promising yield of resveratrol 96.58 μg/g, which is 4.02 folds compared to the untreated sample. This sustainable and green method not only enhanced the production of resveratrol but also improved the safety and reliability of the bioconversion and extraction process. Our novel method has shown great potential to realize large-scale bioconversion and extraction of bioactive compounds from plant waste.

摘要

在本研究中,已创建了一种超声辅助表面活性剂水体系与纤维素固定化微生物群落相结合的方法,作为从花生皮中生物转化和提取白藜芦醇的一种增强且可持续的方法。基于中心复合设计和多个单因素实验,我们得出了最佳生物转化和提取体系。选用由中国工业微生物菌种保藏管理中心(CICC)1912、3.951和3.3148组成的微生物群落,用纤维素进行固定化。其他处理条件包括表面活性剂浓度为3%(w/v)、温度为30℃、时间为36小时、超声功率为250瓦以及液固比为25:1毫升/克。在这些条件下,我们获得了可观的白藜芦醇产量,为96.58微克/克,相较于未处理样品提高了4.02倍。这种可持续且绿色的方法不仅提高了白藜芦醇的产量,还提升了生物转化和提取过程的安全性与可靠性。我们的新方法在实现从植物废料中大规模生物转化和提取生物活性化合物方面显示出巨大潜力。