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从薄荷(Mentha ×piperita)中新型胞质倍半萜合酶 MpTPS4 的特性作为丰富薄荷精油中极具价值的香芹酮的生物资源。

Characterization of a novel cytosolic sesquiterpene synthase MpTPS4 from Mentha ×piperita as a bioresource for the enrichment of invaluable viridiflorol in mentha essential oil.

机构信息

Plant Biotechnology Division, CSIR-Central Institute of Medicinal and Aromatic Plants, P.O. CIMAP, Lucknow 226015, UP, India.

Plant Biotechnology Division, CSIR-Central Institute of Medicinal and Aromatic Plants, P.O. CIMAP, Lucknow 226015, UP, India; Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

出版信息

Int J Biol Macromol. 2024 Oct;277(Pt 2):134214. doi: 10.1016/j.ijbiomac.2024.134214. Epub 2024 Jul 26.

DOI:10.1016/j.ijbiomac.2024.134214
PMID:39069055
Abstract

Our research addresses the challenge of low concentrations of viridiflorol, a unique and highly valuable sesquiterpene found in various Mentha species. We employed biotechnological strategies to enhance viridiflorol production, which could significantly boost export revenue. Mentha piperita L. sesquiterpene synthase (MpTPS4) was the focus of our study because it is a key enzyme in the biosynthesis of viridiflorol. Through biochemical characterization, we confirmed that MpTPS4 exclusively synthesizes viridiflorol. By overexpressing MpTPS4 in M. ×piperita L. using a glandular trichome-specific promoter, we achieved a notable increase (9-25 %) in viridiflorol content. Additionally, we explored the practical application of viridiflorol as a deterrent against the herbivore Helicoverpa armigera. The RNAi-mediated knockdown of MpTPS4 resulted in a significant reduction in viridiflorol levels in the essential oil. More importantly, these results show how relevant MpTPS4 is for making viridiflorol and how biotechnology could be used to increase biosynthesis. Our research provides valuable insights into enhancing the production of this commercially important sesquiterpene, offering promising opportunities for the mentha industry.

摘要

我们的研究解决了低浓度的马鞭草烯酮这一挑战,马鞭草烯酮是一种存在于多种薄荷属植物中的独特而极具价值的倍半萜。我们采用了生物技术策略来提高马鞭草烯酮的产量,这将显著提高出口收入。我们的研究重点是薄荷烯醇合成酶(MpTPS4),因为它是马鞭草烯酮生物合成中的关键酶。通过生化特性分析,我们证实 MpTPS4 专门合成马鞭草烯酮。通过在薄荷属植物中使用腺毛特异性启动子过表达 MpTPS4,我们实现了马鞭草烯酮含量的显著增加(9-25%)。此外,我们还探索了马鞭草烯酮作为植食性昆虫棉铃虫驱避剂的实际应用。MpTPS4 的 RNAi 介导敲低导致精油中马鞭草烯酮水平显著降低。更重要的是,这些结果表明 MpTPS4 对于合成马鞭草烯酮的重要性以及生物技术如何用于增加生物合成。我们的研究为提高这种具有商业重要性的倍半萜的产量提供了有价值的见解,为薄荷产业带来了有前景的机会。

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