EASY-CROPS · Enhancing endosymbiotic interaction to increase crops production
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-07-01 → 2022-06-30
- EU contribution
- €212,934
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Enhancing endosymbiotic interaction to increase crops production
Nitrogen (N) and phosphorous (P) are essential for all aspects of plant growth. Paradoxically, they are poorly available in soils, leading to extensive use of fertilisers to fulfil the demand of a growing population. However, their synthesis and application in agricultural practices harms the environment. The synthesis of N fertilizers alone consumes 3-5% of the world’s annual natural gas demand, which is equivalent to 1-2% of the world's annual energy consumption. The application of N fertilizers to soils can impair phosphate-natural resources and increase soil and water pollution as well as global warming through emissions of nitrous oxide. In this context, lowering fertiliser inputs and breeding crops with better P and N use efficiency are important goals for sustainable agriculture and food security at a time of rapidly growing population in the current climate change. The use of plant-symbiotic microorganisms such as nitrogen-fixing bacteria and phosphate-delivering mycorrhizal fungi in agricultural practices can overcome this problem by providing these nutrients to the plants in an environmentally sustainable manner. The success of root symbioses relies on the molecular dialogue between symbionts and plants. After plant-microorganism recognition, the bacteria/fungi colonize the plant root, forming specific structures known as nodules (nitrogen-fixing bacteria) and arbuscules (phosphate-delivering fungi) where the microorganisms live and provide N or P to the plant. In our lab, we are developing novel strategies to enhancing these symbiotic interactions for their application in agricultural practices. For that, during the ‘EASY-CROPS project’, we developed a line in the model legume Medicago truncatula (EASY line) with increased root symbioses. We study whether the enhanced symbiotic interactions in the EASY line could benefit plant performance and nutrient content of the plant under different soil conditions. Furthermore, we investigated whether the enhanced symbiotic performance of the EASY line is correlated with a higher growth and nitrogen content of the plant under nutrient-depleted conditions. Cereal crops can interact with arbuscular mycorrhiza fungi, but not with nitrogen-fixing bacteria. Bread wheat is an agriculturally important crop species for UK and EU markets. For this project, the EASY mutation was identified in Cadenza and Kronos wheat cultivars in a collection developed at the John Innes Centre (Norwich, UK). We investigated the arbuscular mycorrhiza symbiosis phenotype in the wheat EASY lines. The EASY mutation was identified in a protein relevant for the recognition of the plant-symbiotic microorganisms. To better understand the mechanistic role of the EASY mutation during symbiosis, we aimed to determine the structure of this protein. This is a high-risk objective as the structure of these type of proteins have not been determined yet in plants.
Data: CORDIS, © European Union
Project objective
Nitrogen (N) and phosphorous (P) are essential for all aspect of plant growth. As a paradox, they are poorly available in soil, leading to extensive use of fertilisers to fulfil the demand of a growing population. However, this agronomical practice is detrimental to the environment. To exploit N and overcome P starvation, numerous plant families interact with mutualistic root-endosymbionts such as nitrogen-fixing bacteria with legumes, or phosphate-delivering arbuscular mycorrhiza (AM) with the 80% of land plants. Despite the benefit of these endosymbioses, P and N fertilizers reduce AM and nitrogen-fixing bacteria endosymbioses. In addition, climate change impact endosymbioses with a decrease in nitrogen-fixing symbiosis at high temperature, in acidic and saline soils. Therefore, it is imperative to develop novel strategies to enhance endosymbioses in crops and optimize N and P nutrition under global warming.The success of root endosymbioses relies on the molecular dialogue between symbionts and plants. One of the core functions of this dialogue is to stimulate the release of calcium by the plant nucleus to switch on the symbiotic program. This calcium release is mastered by the cyclic nucleotide gated channels (CNGC)15. A recent Mtcngc15c-easy allelic variant discovered in the proposed laboratory presents spontaneous calcium release and increase of nodulation and mycorrhization. My objectives are to reveal the effect of CNGC15c-EASY mutation on the channel activity and symbioses, and use this knowledge to translate this system into crops. In addition to discover a novel strategy to improve plant production, this work will give me training in plant biology technics and structural biology. Simultaneously, the project will benefit from my expertise in microbiology. Finally, the work in the proposed destination centre will also provide me a valuable international network and skills for my future career.
Original text from CORDIS.
Participants
- JOHN INNES CENTRE · NorwichCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
