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分子方法可减少食用油中的饱和脂肪并去除油脂

Molecular Approaches Reduce Saturates and Eliminate Fats in Food Oils.

作者信息

Wallis James G, Bengtsson Jesse D, Browse John

机构信息

Institute of Biological Chemistry, Washington State University, Pullman, WA, United States.

出版信息

Front Plant Sci. 2022 Jun 2;13:908608. doi: 10.3389/fpls.2022.908608. eCollection 2022.

Abstract

Vegetable oils composed of triacylglycerols (TAG) are a major source of calories in human diets. However, the fatty acid compositions of these oils are not ideal for human nutrition and the needs of the food industry. Saturated fatty acids contribute to health problems, while polyunsaturated fatty acids (PUFA) can become rancid upon storage or processing. In this review, we first summarize the pathways of fatty acid metabolism and TAG synthesis and detail the problems with the oil compositions of major crops. Then we describe how transgenic expression of desaturases and downregulation of the plastid thioesterase have provided the means to lower oil saturates. The traditional solution to PUFA rancidity uses industrial chemistry to reduce PUFA content by partial hydrogenation, but this results in the production of fats that are even more unhealthy than saturated fats. We detail the discoveries in the biochemistry and molecular genetics of oil synthesis that provided the knowledge and tools to lower oil PUFA content by blocking their synthesis during seed development. Finally, we describe the successes in breeding and biotechnology that are giving us new, high-oleic, low PUFA varieties of soybean, canola and other oilseed crops.

摘要

由三酰甘油(TAG)组成的植物油是人类饮食中热量的主要来源。然而,这些油的脂肪酸组成并不适合人类营养和食品工业的需求。饱和脂肪酸会导致健康问题,而多不饱和脂肪酸(PUFA)在储存或加工过程中会发生酸败。在这篇综述中,我们首先总结脂肪酸代谢和TAG合成的途径,并详细阐述主要作物油组成的问题。然后我们描述了去饱和酶的转基因表达和质体硫酯酶的下调如何为降低油的饱和度提供了方法。传统解决PUFA酸败的方法是使用工业化学通过部分氢化来降低PUFA含量,但这会产生比饱和脂肪更不健康的脂肪。我们详细介绍了油合成生物化学和分子遗传学方面的发现,这些发现为通过在种子发育过程中阻断PUFA的合成来降低油中PUFA含量提供了知识和工具。最后,我们描述了育种和生物技术方面的成功,这些成功正在为我们提供新的、高油酸、低PUFA的大豆、油菜和其他油料作物品种。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9218/9205222/88213eab1099/fpls-13-908608-g001.jpg

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