Plants are being turned into microscopic factories that churn out a chemical precursor for thousands of useful compounds—by engineering their oil-storing cells. Plants naturally produce a vast array of complex molecules, but coaxing them to reliably make high yields of a specific product in a stable, breedable line has been a stubborn bottleneck. This project tackles that gap. The researchers will first assemble a synthetic DNA pathway for beta-amyrin, a precursor to over 20,000 triterpenoid compounds used in agriculture, cosmetics, and pharmaceuticals. They will then insert this pathway into the genome of *Marchantia polymorpha*, a simple liverwort. Crucially, they will use newly developed genetic tools to direct beta-amyrin production specifically into the plant’s oil body cells—natural, safe storage compartments—and then trigger those cells to proliferate, creating harvestable, high-yield organs. If successful, this work provides a prototype for whole-organism engineering. It could lower the cost of producing high-value triterpenoids, from crop protectants to drug precursors, by turning a fast-growing plant into a stable, scalable biomanufacturing platform. The approach could also be adapted to improve other crop varieties.
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Plants have a rich endogenous metabolism that can be reprogrammed by genetic transformation. Transient expression techniques have allowed their development as photosynthetic chassis for low-cost high-yield production of vaccines, therapeutic proteins and metabolites. In recent years, several commercial large-scale facilities for transient plant-based bioproduction have been constructed, with products now reaching the market. However, it has proved difficult to engineer high yields of engineered products in true-breeding plant lines, which would pave the way for low-cost bioproduction and new generations of crop varieties. In this project, we will use fast transient expression systems to design and assemble an artificial synthetic pathway for the production of beta-amyrin, a precursor for many different types of triterpene. The triterpenoids are a large, chemically diverse group of natural products (over 20,000 reported to date), with a wide range of applications in the agricultural, food, cosmetic and pharmaceutical sectors. We will transfer this DNA-encoded pathway into the genome of a new model plant system, the liverwort Marchantia polymorpha. Marchantia is arguably the simplest and easiest land plant to work with at this time. We have constructed many new tools for work with Marchantia, and will use these to trigger beta-amyrin production to specialised oil body containing cells. Oil bodies are natural safe containers for accumulation of high concentrations of compounds in cells. We will then use known developmental regulators to engineer oil cell proliferation in Marchantia tissues to create high-yield harvestable plant organs. We believe the project will provide a prototype for whole organism engineering, and crop improvement.
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