H2020Individual fellowship2022–2024

Colour cotton · Bioengineer novel eco-friendly natural colour fibre through genetic manipulation of the phenylpropanoid and betalain pathways in cotton

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2022-03-28 → 2024-06-20
EU contribution
€224,934
Participants
1
Scheme
MSCA-IF

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Results in brief

Bioengineer novel eco-friendly natural colour fibre through genetic manipulation of the phenylpropanoid and betalain pathways in cotton

The project was trying to develop a more versatile and broadly applicable biological toolbox with coloured pigments as the report signals, as outlined in the objectives below: 1) functionally split DODA⍺ for protein complementation assay; 2) use split DODA⍺ in testing protein-protein interaction as an alternative to the widely used split fluorescent protein (BiFC) or luciferase (FLCA) systems; 3) characterize the new protein complementation system; 4) explore alternative applications of using betalain as a signal reporter through manipulating DODA⍺. The project allowed me to explore a plant pigment-based report system in multiple molecular biological assays. With its special characteristics in signalling presenting and observation, the new system provides academic research and industry with a novel toolbox for testing protein-protein interaction and developing novel biosensors.

Data: CORDIS, © European Union

Project objective

Cotton fibre is one of our most important textile resources. Most commercial cotton fibres are various shades of white but can be yellowish because of poor environmental conditions during growth or storage. A bleaching step is employed to address this issue during cotton fabric processing. After cotton fibre is spun into yarn, a dyeing process is applied to colour natural fibre to satisfy costumer’s demand. Additional industrial processes are needed to remove unfavourable natural colours and then add desirable colours to the yarn. Each step costs substantial amounts of energy but more importantly causes serious water and air pollution. More than 100 litres of water are required to dye one kilogram of cotton. The industrial effluents are rich in hazardous material. To address these issues, the proposed research will aim to bioengineer high value eco-friendly naturally coloured cotton fibre. Two overall strategies will be pursued. Firstly, by down-regulating key genes in the phenylpropanoid pathway, we aim to reduce fibre yellowish to increase fibre whiteness for the premium market. Second, by reorientating the metabolic flux from the phenylpropanoid pathway into a heterologously expressed betalain biosynthesis pathway, we aim to engineer novel natural colour cotton. The prospective products will significantly alleviate the environmental issues of the textile industry where 20% of global water pollution is produced and provide a biotechnological solution for a more environmentally friendly textile industry.

Original text from CORDIS.

Participants

  • THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union