Enhancing crops with C2 photosynthesis
Lead Research Organisation:
Lancaster University
Department Name: Lancaster Environment Centre
Abstract
Our food security is at risk. Within the next 30 years, the human population is expected to reach nearly 10 billion, requiring a doubling of crop production. However, the current trajectory of crop yield improvements will not meet these needs, making new agricultural innovations paramount to ensure future food security. Improving photosynthetic efficiency is a promising, yet largely untapped route to enhance crop yields. Our dominant crops (e.g., rice, wheat) use C3 photosynthesis, such that any improvement to this system would substantially impact food security. Under warm, arid, and bright environments, C3 plants suffer from an energetically-costly metabolic process called photorespiration. Photorespiration is a major factor limiting productivity in C3 plants and it will only get worse with the warm temperatures accompanying climate change. If we could find a way to eliminate photorespiration therefore, we could more than double rates of photosynthesis under climate change. However, eliminating photorespiration all together would impact other plant metabolic functions. Therefore, the ideal scenario would be to find a way to maintain photorespiration but minimise its carbon losses. Engineering C2 photosynthesis into C3 crops is the clear solution.
C2 photosynthesis is a simple CO2 concentrating mechanism that captures, concentrates, and re-assimilates CO2 released by photorespiration. It is, in short, a natural CO2 recycling mechanism. Although only recently discovered in the early 1980s, the C2 mode of photosynthesis has repeatedly evolved across diverse plant lineages, including four crop families (Poaceae, Brassicaceae, Asteraceae, Amaranthaceae). This FLF will establish the world's first research program specifically dedicated to engineering the rare C2 mode of photosynthesis into important C3 food and bioenergy crops to sustainably improve yield and environmental resilience. Because all of the genes required for C2 photosynthesis are present in C3 species, only changes to regulation and expression would be needed to engineer C2 photosynthesis into C3 crops. Moreover, C2 plants also have similar leaf structures to C3 plants, which simplifies the engineering protocol. Together, this FLF will initiate a robust research program to establish an impactful, yet feasible, C2 crop engineering and commercialisation strategy via seven work packages:
1. Identify the phenotypic components of C2 photosynthesis in diverse plant families
2. Map the spatial gene expression profiles of C2 leaves across three diverse crop families
3. Engineer a functional C2 photosynthesis system into three C3 Brassicaceae crops
4. Design C2 engineering packages specific to three diverse crop families
5. Field trial the engineered C2 Brassica germplasm
6. Commercialise C2 Brassica products
7. Initiate C2 transformations in Amaranthaceae and Asteraceae crops
Together, the proposed innovative research program will launch an impactful novel crop improvement program aimed to increase yields and stability under our future unstable climate.
C2 photosynthesis is a simple CO2 concentrating mechanism that captures, concentrates, and re-assimilates CO2 released by photorespiration. It is, in short, a natural CO2 recycling mechanism. Although only recently discovered in the early 1980s, the C2 mode of photosynthesis has repeatedly evolved across diverse plant lineages, including four crop families (Poaceae, Brassicaceae, Asteraceae, Amaranthaceae). This FLF will establish the world's first research program specifically dedicated to engineering the rare C2 mode of photosynthesis into important C3 food and bioenergy crops to sustainably improve yield and environmental resilience. Because all of the genes required for C2 photosynthesis are present in C3 species, only changes to regulation and expression would be needed to engineer C2 photosynthesis into C3 crops. Moreover, C2 plants also have similar leaf structures to C3 plants, which simplifies the engineering protocol. Together, this FLF will initiate a robust research program to establish an impactful, yet feasible, C2 crop engineering and commercialisation strategy via seven work packages:
1. Identify the phenotypic components of C2 photosynthesis in diverse plant families
2. Map the spatial gene expression profiles of C2 leaves across three diverse crop families
3. Engineer a functional C2 photosynthesis system into three C3 Brassicaceae crops
4. Design C2 engineering packages specific to three diverse crop families
5. Field trial the engineered C2 Brassica germplasm
6. Commercialise C2 Brassica products
7. Initiate C2 transformations in Amaranthaceae and Asteraceae crops
Together, the proposed innovative research program will launch an impactful novel crop improvement program aimed to increase yields and stability under our future unstable climate.
Planned Impact
The proposed FLF research program will impact the commercial private and public sectors in the UK and globally, as described below.
[Agricultural Stakeholders] The FLF will establish, patent, and commercialise transgenic C2 Brassica oleracea and Brassica napus germplasm. The C2 Brassica crops created in this FLF will provide not only enhanced yield but also, importantly, greater yield consistency across variable environmental conditions. The crop products will be commercialised in North and South America. These benefits will be long term, extending far beyond the FLF.
[Business] British and international business partners will benefit from a new academic collaboration and the revenue resulting from the generation of the engineered crop products. Relevant business partners will be approached by Dr Lundgren. These relationships will be established during Phase 2 of the FLF, but will continue in the long term beyond the FLF. This work will create new, international relationships between the UK and the North/South American agricultural and business sectors.
[Public Sector] Societal impacts will primarily target the UK public, however, they will also have global reach to a lesser degree. Public science communication and outreach will convey the benefits of crop genetic engineering and assuage fears regarding any negative impacts from genetic modification to the general public, university students, and school children. These benefits will be realised within the timeframe of the FLF.
[Academia] Academia will benefit globally from this FLF via several routes. The FLF will (1) put into place a novel C2 photosynthesis crop improvement strategy that can be adopted by other researchers; (2) develop an ultra-modern leaf spatial gene expression profiling platform that can be used for a wide-range of applications; (3) inform the large, international C4 engineering programs on relevant phenotypic and genotypic findings and transformation protocols and approaches; (4) establish new UK and international collaborations and networks; and (5) generate new information on the rare C2 mode of photosynthesis to contribute to our understanding of plant physiological biodiversity. These benefits will be realised via journal article publications, presentations at conferences, and by hosting a Visium spatial gene expression training workshop. These benefits to academia will be long term, extending beyond the FLF.
[Agricultural Stakeholders] The FLF will establish, patent, and commercialise transgenic C2 Brassica oleracea and Brassica napus germplasm. The C2 Brassica crops created in this FLF will provide not only enhanced yield but also, importantly, greater yield consistency across variable environmental conditions. The crop products will be commercialised in North and South America. These benefits will be long term, extending far beyond the FLF.
[Business] British and international business partners will benefit from a new academic collaboration and the revenue resulting from the generation of the engineered crop products. Relevant business partners will be approached by Dr Lundgren. These relationships will be established during Phase 2 of the FLF, but will continue in the long term beyond the FLF. This work will create new, international relationships between the UK and the North/South American agricultural and business sectors.
[Public Sector] Societal impacts will primarily target the UK public, however, they will also have global reach to a lesser degree. Public science communication and outreach will convey the benefits of crop genetic engineering and assuage fears regarding any negative impacts from genetic modification to the general public, university students, and school children. These benefits will be realised within the timeframe of the FLF.
[Academia] Academia will benefit globally from this FLF via several routes. The FLF will (1) put into place a novel C2 photosynthesis crop improvement strategy that can be adopted by other researchers; (2) develop an ultra-modern leaf spatial gene expression profiling platform that can be used for a wide-range of applications; (3) inform the large, international C4 engineering programs on relevant phenotypic and genotypic findings and transformation protocols and approaches; (4) establish new UK and international collaborations and networks; and (5) generate new information on the rare C2 mode of photosynthesis to contribute to our understanding of plant physiological biodiversity. These benefits will be realised via journal article publications, presentations at conferences, and by hosting a Visium spatial gene expression training workshop. These benefits to academia will be long term, extending beyond the FLF.
Publications
Hernández-Verdeja T
(2023)
GOLDEN2-LIKE transcription factors: A golden ticket to improve crops?
in PLANTS, PEOPLE, PLANET
Walsh CA
(2023)
Evolutionary implications of C2 photosynthesis: how complex biochemical trade-offs may limit C4 evolution.
in Journal of experimental botany
Young S
(2022)
C 4 photosynthesis in Paulownia ? A case of inaccurate citations
in PLANTS, PEOPLE, PLANET
Young SNR
(2022)
C4 trees have a broader niche than their close C3 relatives.
in Journal of experimental botany
Description | We are making progress toward recreating a C2 photosynthesis phenotype in crop species. |
Exploitation Route | Other research programmes may follow a similar route to crop engineering. This may occur in academia, private, or public research groups. |
Sectors | Agriculture Food and Drink |
Description | This research is leading to partnerships with industry and foundations. |
First Year Of Impact | 2023 |
Sector | Agriculture, Food and Drink,Education |
Impact Types | Economic |
Description | Earlham Institute - Spatial Transcriptomics |
Organisation | Earlham Institute |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | We are working with the spatial transcriptomics team at the Earlham Institute to develop a protocol for spatial transcriptomics in leaf tissue on their new Vizgen platform. Furthermore, we are hosting a 'Spatial Transcriptomics in Plants Workshop' together, as part of this FLF project. |
Collaborator Contribution | They are co-hosting the 'Spatial Transcriptomics in Plants Workshop', taking a lead on the workshop planning. They are helping to develop a protocol to work with my FLF leaf samples. Finally, they are providing guidance on the development of our probe set, sample preparation, and analyses. |
Impact | This collaboration has organised a 'Spatial Transcriptomics in Plants Workshop' to bring this exciting new type of analysis into plant tissues. Multi-disciplinary between plant sciences and omics sciences. |
Start Year | 2023 |
Description | John Innes Centre (Harwood, Hundleby, Smedley) |
Organisation | John Innes Centre |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | First stages of engineering constitutive over-expression of GLK into their Brassica oleracea line. |
Collaborator Contribution | Access to germplasm, gene sequence data, expertise, and training of PI and staff. |
Impact | Bulking of Brassica oleracea germplasm at Lancaster. Initial stages of cloning and gene synthesis. |
Start Year | 2021 |
Description | Sheffield - LD |
Organisation | University of Sheffield |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | Expertise in photosynthetic diversity. |
Collaborator Contribution | Contribution of plant material; expertise in transcriptomics and genomics. |
Impact | In progress. |
Start Year | 2023 |
Description | Belbin Workshop |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | Local |
Primary Audience | Professional Practitioners |
Results and Impact | Held a Belbin Team Workshop for my research group of ~8 people. |
Year(s) Of Engagement Activity | 2023 |
Description | CAPITALISE Workshop on Crop Improvement |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Policymakers/politicians |
Results and Impact | The Workshop aims to engage key scientists involved in photosynthesis and crop improvement innovations to help shape the science programme within the research roadmap for exploiting photosynthesis. The Roadmap will be presented to the European Commission. The ultimate goal is to ensure interest and funding from the European Commission for translational research activities driven by photosynthesis science. |
Year(s) Of Engagement Activity | 2024 |
Description | Capitalise Photosynthesis 2030+ Seminar Invited Speaker |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | Invited speaker in the Capitalise Photosynthesis 2030+ Seminar and webinar discussion group. The aim of the webinar programme is to communicate the state of the art in photosynthesis research, facilitate communication and promote collaboration within the photosynthesis community towards the common goal of improving photosynthesis in crop plants. |
Year(s) Of Engagement Activity | 2022 |
URL | https://www.youtube.com/watch?v=j9Xob5s_vh8&feature=youtu.be |
Description | Invited seminar speaker - University of Essex, UK |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Professional Practitioners |
Results and Impact | Lundgren was invited to present a departmental seminar at the University of Essex. In April 2021, she presented a talk titled "C2 Photosynthesis: A promising route to food security". Approximately 30 attendees, including professors, research staff, postgraduates, and undergraduate students. The online seminar was made public and was not restricted to Uni Essex members. Researchers from other UK universities attended. There were many questions that sparked a lively discussion afterward. Contacts at the University of Essex reported very positive feedback after my talk. |
Year(s) Of Engagement Activity | 2021 |
URL | https://youtu.be/xT5QsNdm1VE |
Description | Invited seminar speaker - University of Illinois, USA |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | Lundgren was invited to present a departmental seminar at the University of Illinois In April 2021, she presented a talk titled "C2 Photosynthesis: A promising route to food security". Approximately 30 attendees, including professors, research staff, postgraduates, and undergraduate students. There were many questions that sparked a lively discussion afterward. Contacts at the University of Illinois reported very positive feedback after the talk. |
Year(s) Of Engagement Activity | 2021 |
Description | Lancaster Environment Centre Open Day 2023 |
Form Of Engagement Activity | Participation in an open day or visit at my research institution |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Undergraduate students |
Results and Impact | Open Day for prospective students. I discussed my research on C2 crop engineering with these promising young students. |
Year(s) Of Engagement Activity | 2023 |
Description | Lancaster University FST Public Lecture |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Public/other audiences |
Results and Impact | Science Week 2021 - Chemistry, Mathematics and Lancaster Environment Centre Research Talks. Science Week 2021 brings together the Faculty Annual Conference and Public Lecture Series for a week of talks and activities on the theme of "change". https://www.facebook.com/events/450233142983345/?active_tab=discussion |
Year(s) Of Engagement Activity | 2021 |
URL | https://www.facebook.com/events/450233142983345/?active_tab=discussion |
Description | Lundgren Lab website |
Form Of Engagement Activity | Engagement focused website, blog or social media channel |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | Lundgren Lab group website. |
Year(s) Of Engagement Activity | 2021,2022,2023 |
URL | http://wp.lancs.ac.uk/lundgrenlab/ |
Description | Oxford Departmental Seminar |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Professional Practitioners |
Results and Impact | Invited departmental seminar speaker at Oxford University. |
Year(s) Of Engagement Activity | 2023 |
Description | Poster presentation: International SEB conference, 2023 |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Presented a poster entitled 'Shifts in mesophyll-bundle sheath connectivity along C3 - C4 continuum in Alternanthera'. Several senior academics discussed methodology and results, which have sparked and contributed to synthesis of a primary research paper. |
Year(s) Of Engagement Activity | 2023 |
Description | Poster presentation: LI-COR international conference |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | Presented a poster entitled ''C2 plants are overall larger and have greater iWUE than their C3 relatives". As the audience was specialised in gas exchange measurements, several discussions from industry and technical staff and academics have influenced a draft of a second primary research article involved in WP1 of this project. |
Year(s) Of Engagement Activity | 2023 |
Description | SEB Leaders of the Future talk |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Postgraduate students |
Results and Impact | Invited to speak in the Society of Experimental Biology Leaders of the Future series. |
Year(s) Of Engagement Activity | 2023 |
Description | SEB Presidents Medal Plant Biology Talk |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | This was an invited talk as the 2021 SEB Presidents Medal in Plant Biology winner. |
Year(s) Of Engagement Activity | 2021 |
URL | https://www.sebiology.org/grants/award-listing/presidents-medal-award/2021-president-medallist.html |
Description | SEB Research Talk |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | LATER |
Year(s) Of Engagement Activity | 2021 |
Description | THV and RK_Fascination of Plants Day 2022 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Public/other audiences |
Results and Impact | Team members THV and RK organised and created website and content for the EPSO Fascination of Plants Day 2022. This online event reached over 400 people. |
Year(s) Of Engagement Activity | 2022 |
URL | https://wp.lancs.ac.uk/plant-crop-science-outreach/fascination-of-plants-2022/ |
Description | THV_ Plant and Crop Science invited seminar speaker |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | Regional |
Primary Audience | Professional Practitioners |
Results and Impact | THV was invited to speak at the Plant and Crop Science seminar at the Lancaster Environment Centre, Lancaster (UK) on 6th December 2022. The talk was titled "A tale of cold and chloroplasts". |
Year(s) Of Engagement Activity | 2022 |
Description | THV_Centre for Plant Biotechnology and Genomics - Invited Seminar Speaker |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | THV was invited to give a talk at the Centre for Plant Biotechnology and Genomics Seminar at CBGP, Madrid (Spain) on 10th March 2023. The talk was titled "The challenges of turning green: Signalling during chloroplast development". |
Year(s) Of Engagement Activity | 2023 |
Description | THV_Light UP Lancaster 2022 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | Regional |
Primary Audience | Public/other audiences |
Results and Impact | THV organised, created content, supervised the team, and did activities for the Light UP Lancaster outreach event titled "Photosynthesis - Turning light into life" on 4th-5th November 2022 in Lancaster (UK). This event reached nearly 500 members of the general public. More info about LightUp Lancaster here: https://www.lightuplancaster.co.uk/about/ and chrome-extension://oemmndcbldboiebfnladdacbdfmadadm/https://www.lightuplancaster.co.uk/wp-content/uploads/LUL22-programme-b-compressed.pdf |
Year(s) Of Engagement Activity | 2022 |
URL | http://wp.lancs.ac.uk/plant-crop-science-outreach/ |
Description | THV_Plastid Preview 2022 poster presentation |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Professional Practitioners |
Results and Impact | THV presented a poster at the Plastid Preview on 1-2 September 2022 at the John Innes Centre, Norwich (UK). The poster was titled "Regulation of chloroplast biogenesis: On the road to C2 photosynthesis" |
Year(s) Of Engagement Activity | 2022 |
Description | THV_Plastid Preview 2023 Oral presentation |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Professional Practitioners |
Results and Impact | THV presented a talk at the Plastid Preview on 7-8 September 2023 at the University of Oxford, Oxford (UK). The talk was titled "The role of GLKs in C2 photosynthesis" |
Year(s) Of Engagement Activity | 2023 |
Description | The Tymes - Interview |
Form Of Engagement Activity | Engagement focused website, blog or social media channel |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | Interview for the Botanical University Challenge The Thymes newsletter. |
Year(s) Of Engagement Activity | 2024 |
URL | https://botanicaluniversitychallenge.co.uk/the-thymes/ |