Active Food & Agriculture Plants, Animals & Ecology

ALMOND: Agriculture Living Machine of Operational Nano Droplets

In plain English

AI plain-English summary

Farmers coat seeds with billions of artificial cells that will manufacture pesticides on demand, only activating when a seed germinates and a threat appears. This matters because chemical pesticides contaminate water, persist in soil, and drive resistance in pests. Natural alternatives—microorganisms that produce protective compounds—often fail because the microbes themselves can infect people, or their active molecules are too unstable to purify and use alone. The researchers have identified a potent fungicidal compound called cepacin from *Burkholderia* bacteria, but cannot deploy the living bacteria safely. The project builds artificial cells using 3D-printed microfluidics: tiny lipid-bilayer compartments that act as biochemical factories. Encased in biodegradable hydrogel seed coatings, these non-reproducing, non-living capsules synthesise cepacin and other bioactive molecules only when the seed sends germination signals. The system can combine multiple toxins and nitrogen-fixing capabilities in a single coating, without creating genetically modified organisms that face regulatory hurdles. If successful, this approach could replace synthetic fungicides and insecticides with localised, responsive biological protection—reducing chemical runoff, slowing resistance, and improving soil health—while keeping global food supplies stable.

View original technical description
Industrialisation of the agricultural sector has been essential for feeding the growing global population, but has resulted in increased chemical burden on ecosystems with the use of chemical pesticides and insecticides to protect crop growth. The global seed treatment market size was valued at $13.4B in 2022 and is expected to grow ~10 % annually until 2030. US farmers annually spend >$575 million on fungicides to provide a commercial crop gain of c.$13 billion. This reflects the huge role of agrichemicals in current usage to maintain global food supplies. The ecological impacts of chemical pesticides and insecticides, including environmental persistence, ecosystem toxicity, water contamination, foodchain accumulation and emerging resistance, have become increasingly apparent and have seen a move away from their use. However, alternative solutions are not without challenge. There is increasing interest in harnessing naturally occurring microorganisms (biopesticides) in or on soil or within seed-coatings to help protect crops, and this approach has seen much success with species such as Bacillus thuringiensis and Lysinbacillus sphaericus, and insect-active fungi and viruses. However, a number of highly promising specific pesticide and insecticides biocactive molecules made by micro-organisms that can protect crops are difficult to harness in practice due to potential concerns about the micro-organisms being able to cause infection in people or animals, until proven safe. Similarly, the active compounds themselves are often unstable or difficult to purify, so these are challenging to use alone. We have identified novel bioactive polyyne, cepacin in Burkholderia bacteria and discovered its biosynthetic pathway. Cepacin has fungicidal activity that protects germinating crops against damping off disease, as such these specialised metabolites represent promising novel bioactives. In this project we will use cutting edge 3D-printed microfluidics to produce non-reproducing, environmentally benign artificial cells - artificial engineered materials inspired by biology based on the cell membrane. These artificial cells contain networked compartments, separated by lipid bilayers, much like biological cells, and can serve as biochemical microfactories to synthesis these promising pesticide and insecticide biochemicals locally, to enhance crop health. By formulating these artificial cells as crop seed coatings in biodegradable hydrogel shells, the protective effects are localised exactly where needed. The artificial cells will be programmed to respond to genetic cues when the seed germinates, to activate pesticide protection. In this way the artificial cells can respond in different ways in different circumstances of plant health, disease or in the presence of different insect predators. Importantly these systems afford flexibility and a combinatorial ability to assemble pathways and toxins not normally found together, without creating transgenic organisms that that could prove challenging to license. In this way, we can use different active biomolecules in combination in a single synergistic formulation and also combine with existing biopesticides for enhanced function, that includes nitrogen fixation for enhanced crop growth and soil health and carbon capture and conversion to energy to power the artificial cell metabolism .

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Researchers

Colin Berry (Co-Investigator)David Barrow (Co-Investigator)Eshwar Mahenthiralingam (Co-Investigator)James Murray (Co-Investigator)Jin Li (Co-Investigator)Oliver Castell (Principal Investigator)Ze Ji (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

A biopesticidal lease of life for crop protection : additive manufacturing for tailored timing of biopesticide release by natural triggers
21ENGBIO: Engineering targeted activation of fungicides at the plant-pathogen interface
Establishing the Efficacy, Safety and Persistence of biopesticides based on naturally occurring beneficial bacteria
Exploiting natural product assembly line genomics and synthetic biology for discovery and optimisation of novel agrochemicals
Priming of plant defences against pests and pathogens using seed treatments.

Original classification

Research Grant

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