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南极假丝酵母脂肪酶 A 具有近乎理想的催化性能,可通过三酰基甘油的一步乙醇解将高度浓缩的 n-3 多不饱和脂肪酸转化为单酰基甘油。

The near-ideal catalytic property of Candida antarctica lipase A to highly concentrate n-3 polyunsaturated fatty acids in monoacylglycerols via one-step ethanolysis of triacylglycerols.

机构信息

College of Life Science, Fujian Normal University, Fuzhou 350117, China; Department of Engineering, Aarhus University, Gustav Wieds Vej 10, 8000 Aarhus C, Denmark.

Department of Engineering, Aarhus University, Gustav Wieds Vej 10, 8000 Aarhus C, Denmark.

出版信息

Bioresour Technol. 2016 Nov;219:466-478. doi: 10.1016/j.biortech.2016.08.007. Epub 2016 Aug 5.

Abstract

Declining quantity/quality of available n-3 polyunsaturated fatty acids (n-3 PUFAs) resources demand innovative technology to concentrate n-3 PUFAs from low quality oils into value-added products/health-beneficial ingredients rich in n-3 PUFAs. This work proposed the catalytic property and specificity of an ideal enzyme required to tackle this task and identified Candida antarctica lipase A (CAL-A) is such a near-ideal enzyme in practice, which concentrates n-3 PUFAs from 25% to 27% in oils to a theoretically closer value 90% in monoacylglycerols (MAGs) via one-step enzymatic ethanolysis. Non-regiospecificity and high non-n-3 PUFAs preference of CAL-A are the catalytic feature to selectively cleave non-n-3 PUFAs in all 3 positions of triacylglycerols (TAGs); while high ethanol/TAGs ratio, low operation temperature and high tolerance to polar ethanol are essential conditions beyond biocatalyst itself. C-13 Nuclear magnetic resonance ((13)C NMR) analysis and competitive factor estimation verified the hypothesis and confirmed the plausible suggestion of catalytic mechanism of CAL-A.

摘要

可用的 n-3 多不饱和脂肪酸 (n-3 PUFAs) 资源数量/质量下降,需要创新技术从低质量油中浓缩 n-3 PUFAs 到富含 n-3 PUFAs 的高附加值产品/有益健康的成分。本工作提出了理想酶所需的催化特性和特异性,以解决这一问题,并确定南极假丝酵母脂肪酶 A (CAL-A) 在实践中是一种近乎理想的酶,它通过一步酶法乙醇解将油中的 n-3 PUFAs 从 25%浓缩到 27%,理论上更接近单酰基甘油 (MAGs) 中的 90%。CAL-A 的非区域特异性和高非 n-3 PUFAs 偏好性是其催化特征,可选择性地在三酰基甘油 (TAGs) 的所有 3 个位置切割非 n-3 PUFAs;而高乙醇/TAGs 比、低操作温度和对极性乙醇的高耐受性是超越生物催化剂本身的必要条件。13C 核磁共振 ((13)C NMR) 分析和竞争因子估计验证了这一假设,并证实了 CAL-A 催化机制的合理建议。

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