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Every year, crop diseases cause devastating losses in agricultural production, threatening the food security and livelihoods of millions of farmers. In the heart of the Alentejo, an innovative project is using the power of genomics to help combat these invisible threats. The AlViGen Project, with the participation of InnovPlantProtect researchers Rute Rego and João Bilro, is paving the way for a new era of crop surveillance and protection.

The Problem and the Solution

“Yellow rust on wheat and gafa in olive groves are real scourges for farmers,” explains Rute Rego, a researcher at AlViGen. “These diseases can wipe out entire harvests, leading to severe economic losses and compromising food quality.”

But AlViGen isn't just observing the problem. The team is using cutting-edge technology to detect and identify the strains of fungi that cause these diseases, long before the symptoms become visible.

“We use traps to collect spores that circulate in the air,” continues Rute. “These traps allow us to monitor the presence of fungi in real time, which gives us an important advantage in preventing infections.”

But the magic happens in the laboratory, where the team extracts DNA from the spores and carries out advanced genomic analysis using powerful DNA sequencing technology based on the metabarcoding, The Nanopore portable sequencer is a state-of-the-art technology.

Rute Rego, InnovPlantProtect researcher, analyzes samples of the fungus that causes gafa, as part of the AlViGen project.

Unlocking the genetic code of fungi

To explain more about metabarcoding and its advantage for detecting the presence of species or strains of fungi that cause diseases in crops, the researcher gives the example of a bag full of different types of grain: rice, beans, corn, which is being analyzed by the reader. “Metabarcoding is like putting a unique label (a ‘barcode’) on each type of grain. You can then mix all the grains into a single sample and, by reading the labels, you can identify the amount of each type of grain present.”

In the case of AlViGen, this technique makes it possible to analyze multiple species of fungi at the same time (in multiple samples), each with its own genetic ‘barcode’ and “identify exactly which fungi are present, even in small quantities”, explains the researcher.

And what is the practical impact of this method for monitoring and predicting the disease? The researcher of the AlViGen project is able to identify, with high precision, the moment when the pathogen begins to appear in the field, which makes it possible to alert farmers in real time to the risk of the disease. Producers can adopt preventive measures and apply the necessary products to avoid infection, contributing to a rapid and effective response to disease prevention.

The Timeline of Fungal Evolution

AlViGen's research is not limited to identifying microorganisms that damage crops; it also seeks to understand their evolution and diversity. João Bilro, another researcher on the project, is studying the phylogeny of the fungus Colletotrichum, This is a microorganism responsible for causing gafa or anthracnose, a disease that affects olive groves in Portugal. This disease mainly affects the olives, which compromises the quality of the oil.

“Phylogeny is crucial to understanding how the different strains of Colletotrichum are related and how they have evolved over time,” explains João. “Just as a family tree traces the history of a family, showing how the members are related to each other, phylogenetic trees reveal the evolutionary relationships between the different strains of this fungus. Each branch of the tree represents an evolutionary lineage, and the nodes indicate common ancestors. By comparing the DNA sequences of these strains, we can reconstruct their evolutionary history, identifying which ones are closer or more genetically distant, and thus infer characteristics such as virulence or resistance to fungicides,” he reveals.

This knowledge allows researchers to identify patterns of spread and adaptation of the fungus, which is fundamental to developing more effective strategies to contain and/or reduce the damage this fungus causes to Portuguese olive groves.

“One of the challenges of our research is the great genetic diversity of the Colletotrichum,” admits João. “However, by uncovering their evolutionary secrets, we are paving the way for the development of more precise and targeted detection and control methods.”

Photo from left: João Bilro, InnovPlantProtect bioinformatician, studying the phylogeny of the fungus Colletotrichum as part of the AlViGen project; Photo right: Rute Rego and João Bilro discuss ideas about the AlViGen project

The Future of Agriculture Starts Here

The AlViGen Project aims to have a significant impact on the agricultural landscape, especially in the Alentejo, a region with a strong agricultural tradition. By providing farmers with early detection tools and accurate information on the microorganisms that cause crop diseases, the project aims to help with decision-making, enabling farmers to protect their crops and reduce production losses.

“Our ultimate goal is to empower farmers with the knowledge and tools they need to protect their crops sustainably,” says Rute. “We believe that genomic surveillance is a key tool for the future of crop protection.”

João Bilro agrees and adds: “Continuous research is essential to monitor the evolution of harmful microorganisms and develop new control strategies that are always effective. In the future, we hope to expand the scope of AlViGen to include other microorganisms and crops, and make genomic surveillance an accessible tool for all farmers.”

Science at the Service of Agriculture

The AlViGen Project, supported by the Promove Program of the “la Caixa” Foundation, in partnership with Banco BPI and the Foundation for Science and Technology (FCT), is an inspiring example of how science and technology can be applied to solve real problems and transform agriculture. By unlocking the genetic secrets of crop microorganisms, Rute Rego and João Bilro are paving the way for safer, more sustainable and resilient agriculture.

The fight against crop diseases continues, but with AlViGen, farmers can finally see the enemy before it becomes visible.

On May 13th, the project team AI4Leafhopper presented the new application iCountPests, an innovative solution that uses Artificial Intelligence (AI) to detect and count green leafhoppers in chromotropic traps - quickly, accurately and in real time.

Developed as an intuitive mobile application, the iCountPests was designed to facilitate the monitoring of various agricultural pests. With a simple and accessible interface, it allows users to record the evolution of pests in their crops by submitting photographs of the traps installed in the field.

The application uses advanced computer vision models to automatically detect and count insects, delivering results in around a minute - a much faster and more practical process than traditional manual counting.

In its first version, the app already has a model for detecting the green leafhopper (Jacobiasca lybica), achieving an average accuracy of approximately 90%. Functionalities will soon be added to identify other relevant pests, such as curl moth (Cryptoblabes gnidiella) and grape moth (Lobesia botrana).

In addition to automatic counting, the iCountPests makes it possible to monitor the evolution of pest populations over time, making it easier to identify trends and plan more effective interventions.

This project is the result of a multidisciplinary team combining skills in ecology, entomology, artificial intelligence, computer vision, remote sensing and software development, with the aim of making pest monitoring simpler, more accurate and more accessible.

During the presentation session, it was possible to hear the opinions and suggestions of future users of the application. These contributions are essential if we are to continue to improve the tool and ensure that it responds in a practical way to the real needs of farmers and technicians in the sector. We want to develop solutions that evolve with agriculture!

Innovation is at the heart of everything we do and our motto is clear:
“Innovate together, protect better.”

If you want to know more about iCountPests, contact us by email:
📩 apps@iplantprotect.pt

Image credits: InnovPlantProtect

The executive director of InnovPlantProtect (InPP), António Saraiva, took part in the conference “What are the challenges facing the national agroforestry sector over the next decade?”, which took place at the Escola Superior Agrária de Coimbra (ESAC) of the Polytechnic Institute of Coimbra last Tuesday, April 22.

The event, which brought together more than 150 participants and was organized by 17 national Competence Centres, discussed topics such as innovation, sustainability, soil conservation, monitoring cork oak forests and efficient agricultural management.

António Saraiva was part of the panel of commentators, whose speaker was Pedro Santos, Director General of CONSULAI, and moderated by Maria Custódia Correia, Coordinator of the AKIS Portugal Network. The opening session was attended by the Minister for Agriculture and Fisheries, José Manuel Fernandes, who announced the publication of the Ordinance of April 21 to open the Grant for Initiatives for the creation of Operational Groups (OG).

This initiative provides a total of 11 million euros for new GOs, with a maximum of 350,000 euros per project and eligible funding of 100%.

The GOs are considered crucial structures for transferring knowledge and strengthening the AKIS (Agricultural Knowledge and Innovation System).

Special thanks to the 17 Competence Centers for the opportunity to participate in this productive meeting!

Image credits: Rede Rural Nacional

EVENTS

The software used to access and visualize the data sent by the Tree Talker sensors installed in chestnut trees in Sabugal has been improved and is now more intelligent and interactive, thanks to the use of data science tools. This development was carried out by the Monitoring and Diagnostics Department as part of the project “Educating to know, protect and monitor chestnut trees through IoT technology”, co-financed by the Environmental Fund and led by InnovPlantProtect (InPP) in collaboration with Sabugal Municipal Council (CMS).

The application of the technology known as “Internet of Things” (IoT, from the English Internet of Things) is the main novelty of this year. innovative environmental education program. By installing remote sensors on the trunks, the trees communicate their state of health, including parameters such as water consumption, biomass growth, stem humidity, absorbed solar radiation and the state of health of the leaves through light reflection.

Once collected by the TT Cloud concentrator (gateway), the raw data from the Tree Talkers is transmitted to a server via the Internet and converted into “readable” information, in the form of graphs, tables and fault alerts, among other things. With the new development, users can no longer view static graphs but can interact with dynamic graphs, which, for example, allow them to zoom in on a particular peak or curve to access a very specific and precise time period.

In addition to facilitating and improving the consultation and analysis of data on the variation in the voltage of the batteries that power the Tree Talkers, or on the temperature recorded, among many others, the new software automatically triggers email messages to pre-defined users in the event of an alert - for example, if a battery suddenly runs out of charge, in which case a trip to the site is necessary to replace the power supply device.

As part of its strategy for developing bio-inspired products, InnovPlantProtect (InPP) is building a library of microorganisms isolated from various environments, which are being identified by molecular characterization and evaluated for their biochemical properties, indicative of their potential role as Biological Control Agents (BCA). In parallel, InPP is building up a portfolio of phytopathogenic agents (bacteria and fungi), which will serve as a basis for evaluating the BCA. in vitro e in vivo the potential of isolated BCA. 

According to the Food and Agriculture Organization of the United Nations (FAO), around 40% of global agricultural production is lost every year due to pests and diseases, which translates into losses of more than 195 billion euros. For decades, phytopharmaceuticals have played a fundamental role in maintaining agricultural health, protecting crops against pests and diseases and ensuring food safety. However, their excessive and sometimes inappropriate use has a negative impact on soil, water and biodiversity, and can have harmful effects on the health of animals and humans.

As part of the “From Farm to Fork” strategy, one of the pillars of the European Green Deal, the European Commission has set targets for the sustainable use of phytopharmaceuticals, one of which is to reduce their use by 50% by 2030. In order to cope with the withdrawal of these products from the market, it is necessary to develop effective, sustainable, environmentally friendly and economical alternatives.

Bacterial growth inhibition test.

One of these alternatives is the use of BCA. These microorganisms are efficient at reducing the incidence or severity of diseases caused by phytopathogens, and some also act as biostimulants, i.e. they have the ability to increase the strength and speed of plant development.

There are several mechanisms through which BCAs carry out their functions, namely: inducing resistance mechanisms in the plant; competing with pathogens for space and nutrients; interacting through antibiosis mechanisms (in which one organism harms the development of the other); secreting antimicrobial or antifungal compounds; and invading and/or killing the cells of plant pathogens.

In the current context of climate change in the Alentejo region, the green leafhopper (or cicada) represents one of the biggest challenges in terms of pests faced by wine producers, with a significant impact on production. It was against this backdrop that a team from InnovPlantProtect (InPP) designed and carried out the experimental trial “Monitoring and Diagnosis of Green Leafhopper Infestations in Vineyards of the João Portugal Ramos”, work on which began in May 2021, on the Vila Santa estate in Estremoz.

The green leafhopper (species Jacobiasca lybicand Empoasca spp.), in this case, is a pest that sucks the leaves of the vine, altering their color and shape. The leaves lose their ability to photosynthesize, darken and, in the most serious cases, fall off. The grapes lose quality and quantity. The vineyard can also be weakened in the post-harvest period.

The main objectives of this trial, led by Pest and Disease Monitoring and Diagnosis Department of the InPP, were to characterize the damage caused by leafhoppers and to obtain information on the demographic parameters of these insects, which will serve as a basis for using remote sensing to predict the time and space of the pest's occurrence. 

In the first phase, traps were placed in 14 locations, in collaboration between technicians from João Portugal Ramos and the InPP. These traps were monitored weekly between May and August by an InPP team to count adult individuals of the green leafhopper. In June, field work intensified, with surveys being carried out to detect vines infested by green leafhoppers.

The surveys ran until the end of July and 58 vines were selected and marked for weekly monitoring. The selected vines were monitored between June and August, and the number of nymphs was counted, the instar of the nymphs observed (stage of metamorphosis between two moulting periods), as well as recording the severity of the symptoms observed.

All the information obtained was recorded using the app ODK Collect for Android, being immediately accessible through a WebGIS platform created with the software open source QGIS/Lizmap. Other tasks carried out included collecting specimens for identification in the laboratory and prospecting for the pest in potential natural hosts during the winter period.

InPP will soon be presenting some of the results of this trial, and the R&D plan for 2022 is currently being prepared.