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覆盆子酮在 和 中的积累通过融合途径基因的表达。

Raspberry Ketone Accumulation in and by Expression of Fused Pathway Genes.

机构信息

VTT Technical Research Centre of Finland Ltd., P.O. Box 1000, FI-02044 Espoo, Finland.

出版信息

J Agric Food Chem. 2023 Sep 13;71(36):13391-13400. doi: 10.1021/acs.jafc.3c02097. Epub 2023 Sep 1.

Abstract

Raspberry ketone has generated interest in recent years both as a flavor agent and as a health promoting supplement. Raspberry ketone can be synthesized chemically, but the value of a natural nonsynthetic product is among the most valuable flavor compounds on the market. Coumaroyl-coenzyme A (CoA) is the direct precursor for raspberry ketone but also an essential precursor for flavonoid and lignin biosynthesis in plants and therefore highly regulated. The synthetic fusion of 4-coumaric acid ligase (4CL) and benzalacetone synthase (BAS) enables the channeling of coumaroyl-CoA from the ligase to the synthase, proving to be a powerful tool in the production of raspberry ketone in both and . To the best of our knowledge, the key pathway genes for raspberry ketone formation are transiently expressed in for the first time in this study, producing over 30 μg/g of the compound. Our raspberry ketone producing yeast strains yielded up to 60 mg/L, which is the highest ever reported in yeast.

摘要

树莓酮近年来作为一种调味剂和促进健康的补充剂引起了人们的兴趣。树莓酮可以通过化学合成,但天然非合成产品的价值是市场上最有价值的风味化合物之一。咖啡酰辅酶 A(CoA)是树莓酮的直接前体,但也是植物中类黄酮和木质素生物合成的必需前体,因此受到高度调控。4-香豆酸连接酶(4CL)和苯乙酮合酶(BAS)的化学融合使 CoA 从连接酶通道到合酶,这被证明是在 和 中生产树莓酮的有力工具。据我们所知,本研究中首次在 中瞬时表达了树莓酮形成的关键途径基因,产生了超过 30 μg/g 的化合物。我们生产树莓酮的酵母菌株的产量高达 60 mg/L,这是酵母中报道的最高产量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ebc/10510385/e712f7788932/jf3c02097_0001.jpg

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