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理性设计和修饰 NphB 用于大麻素生物合成。

Rational Design and Modification of NphB for Cannabinoids Biosynthesis.

机构信息

New Cornerstone Science Laboratory, Shaanxi Key Laboratory of Qinling Ecological Intelligent Monitoring and Protection, School of Ecology and Environment, Northwestern Polytechnical University, Xi'an 710072, China.

Jiaxing Synbiolab Technology Co., Ltd., Jiaxing 314000, China.

出版信息

Molecules. 2024 Sep 19;29(18):4454. doi: 10.3390/molecules29184454.

Abstract

The rapidly growing field of cannabinoid research is gaining recognition for its impact in neuropsychopharmacology and mood regulation. However, prenyltransferase (NphB) (a key enzyme in cannabinoid precursor synthesis) still needs significant improvement in order to be usable in large-scale industrial applications due to low activity and limited product range. By rational design and high-throughput screening, NphB's catalytic efficiency and product diversity have been markedly enhanced, enabling direct production of a range of cannabinoids, without the need for traditional enzymatic conversions, thus broadening the production scope of cannabinoids, including cannabigerol (CBG), cannabigerolic acid (CBGA), cannabigerovarin (CBGV), and cannabigerovarinic acid (CBGVA). Notably, the W3 mutant achieved a 10.6-fold increase in CBG yield and exhibited a 10.3- and 20.8-fold enhancement in catalytic efficiency for CBGA and CBGV production, respectively. The W4 mutant also displayed an 9.3-fold increase in CBGVA activity. Molecular dynamics simulations revealed that strategic reconfiguration of the active site's hydrogen bonding network, disulfide bond formation, and enhanced hydrophobic interactions are pivotal for the improved synthetic efficiency of these NphB mutants. Our findings advance the understanding of enzyme optimization for cannabinoid synthesis and lay a foundation for the industrial-scale production of these valuable compounds.

摘要

大麻素研究领域的迅速发展,因其在神经精神药理学和情绪调节方面的影响而受到关注。然而,由于活性低和产物范围有限,前体转移酶(NphB)(大麻素前体合成的关键酶)在大规模工业应用中仍然需要显著改进。通过合理设计和高通量筛选,NphB 的催化效率和产物多样性得到了显著提高,能够直接生产一系列大麻素,而无需传统的酶转化,从而拓宽了大麻素的生产范围,包括大麻萜酚(CBG)、大麻萜酚酸(CBGA)、大麻萜酚酮(CBGV)和大麻萜酚酮酸(CBGVA)。值得注意的是,W3 突变体使 CBG 的产量增加了 10.6 倍,对 CBGA 和 CBGV 的生产的催化效率分别提高了 10.3 倍和 20.8 倍。W4 突变体也使 CBGVA 的活性提高了 9.3 倍。分子动力学模拟表明,活性位点氢键网络、二硫键形成和增强的疏水相互作用的策略性重构对于这些 NphB 突变体提高合成效率至关重要。我们的研究结果推进了对大麻素合成酶优化的理解,并为这些有价值化合物的工业规模生产奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e81/11434003/2ed79525e358/molecules-29-04454-g001.jpg

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