Impact of heterologous expression of Cannabis sativa tetraketide synthase on Phaeodactylum tricornutum metabolic profile

IF 6.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Nicolas Sene, Karen Cristine Gonçalves dos Santos, Natacha Merindol, Sarah-Eve Gélinas, Alexandre Custeau, Fatima Awwad, Elisa Fantino, Fatma Meddeb-Mouelhi, Hugo Germain, Isabel Desgagné-Penix
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引用次数: 0

Abstract

Background

Pharmaceutical safety is an increasing global priority, particularly as the demand for therapeutic compounds rises alongside population growth. Phytocannabinoids, a class of bioactive polyketide molecules derived from plants, have garnered significant attention due to their interaction with the human endocannabinoid system, offering potential benefits for managing a range of symptoms and conditions. Traditional extraction from cannabis plants poses regulatory, environmental, and yield-related challenges. Consequently, microbial biosynthesis has emerged as a promising biotechnological alternative to produce cannabinoids in a controlled, scalable, and sustainable manner. Developing diatom-based biofactories represent a crucial step in advancing this biotechnology, enabling the efficient production of high-valued compounds such as cannabinoids.

Results

We engineered the diatom Phaeodactylum tricornutum, a unicellular photosynthetic model organism prized for its naturally high lipid content, to produce olivetolic acid (OA), a key metabolic precursor to most cannabinoids. The genes encoding tetraketide synthase and olivetolic acid cyclase from cannabis were cloned onto episomal vectors and introduced using bacterial conjugation in two separate P. tricornutum transconjugant lines to evaluate enzyme activity and OA production in vivo. Both genes were successfully expressed, and the corresponding enzymes accumulated within the transconjugant lines. However, despite testing the cell extracts individually and in combination, OA accumulation was not detected suggesting potential conversion or utilization of OA by endogenous metabolic pathways within the diatoms. To investigate this further, we analyzed the impact of CsTKS expression on the diatom’s metabolome, revealing significant alterations that may indicate metabolic flux redirection or novel pathway interactions.

Conclusions

Our study demonstrates the successful expression of cannabinoid biosynthetic genes in P. tricornutum but highlights challenges in OA accumulation, likely due to endogenous metabolic interactions. These findings underscore the complexity of metabolic engineering in diatoms and suggest the need for further pathway optimization and metabolic flux analysis to achieve efficient cannabinoid biosynthesis. This research contributes to advancing sustainable biotechnological approaches for cannabinoid production.

Graphical abstract

大麻四肽合成酶异源表达对三角褐指藻代谢谱的影响
药物安全日益成为全球优先考虑的问题,特别是随着人口增长,对治疗性化合物的需求也在上升。植物大麻素是一类从植物中提取的生物活性聚酮分子,由于其与人类内源性大麻素系统的相互作用,为治疗一系列症状和条件提供了潜在的益处,已经引起了人们的极大关注。传统的从大麻植物中提取会带来监管、环境和产量相关的挑战。因此,微生物生物合成已成为一种有前途的生物技术替代生产大麻素的控制,可扩展和可持续的方式。开发以硅藻为基础的生物工厂是推进这种生物技术的关键一步,使大麻素等高价值化合物的高效生产成为可能。结果:我们设计了一种单细胞光合模式生物——三角藻(Phaeodactylum tricornutum),使其产生橄榄酸(OA),这是大多数大麻素的关键代谢前体。将大麻四肽合成酶和橄榄酸环化酶的编码基因克隆到episomal载体上,并通过细菌偶联的方法将其引入到两个不同的三角草(P. tricornutum)转偶联系中,在体内评价酶的活性和OA的产生。两个基因均成功表达,相应的酶在转接合系内积累。然而,尽管对细胞提取物进行了单独和组合测试,但没有检测到OA积累,这表明硅藻体内的内源性代谢途径可能转化或利用OA。为了进一步研究这一点,我们分析了CsTKS表达对硅藻代谢组的影响,揭示了可能表明代谢通量重定向或新途径相互作用的显著变化。结论sour研究表明大麻素生物合成基因在三角草中成功表达,但强调了OA积累的挑战,可能是由于内源性代谢相互作用。这些发现强调了硅藻代谢工程的复杂性,并表明需要进一步优化途径和代谢通量分析,以实现高效的大麻素生物合成。这项研究有助于推进大麻素生产的可持续生物技术方法。图形抽象
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来源期刊
Biotechnology for Biofuels
Biotechnology for Biofuels 工程技术-生物工程与应用微生物
自引率
0.00%
发文量
0
审稿时长
2.7 months
期刊介绍: Biotechnology for Biofuels is an open access peer-reviewed journal featuring high-quality studies describing technological and operational advances in the production of biofuels, chemicals and other bioproducts. The journal emphasizes understanding and advancing the application of biotechnology and synergistic operations to improve plants and biological conversion systems for the biological production of these products from biomass, intermediates derived from biomass, or CO2, as well as upstream or downstream operations that are integral to biological conversion of biomass. Biotechnology for Biofuels focuses on the following areas: • Development of terrestrial plant feedstocks • Development of algal feedstocks • Biomass pretreatment, fractionation and extraction for biological conversion • Enzyme engineering, production and analysis • Bacterial genetics, physiology and metabolic engineering • Fungal/yeast genetics, physiology and metabolic engineering • Fermentation, biocatalytic conversion and reaction dynamics • Biological production of chemicals and bioproducts from biomass • Anaerobic digestion, biohydrogen and bioelectricity • Bioprocess integration, techno-economic analysis, modelling and policy • Life cycle assessment and environmental impact analysis
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