INRAE traces the Mediterranean invasion of tomato leaf curl New Delhi virus with Genome Detective

Dr. Cécile Desbiez, Plant Virologist at INRAE (French National Research Institute for Agriculture, Food and Environment), uses the Genome Detective platform to reconstruct and analyse the genomes of emerging plant viruses. By combining Oxford Nanopore long-read sequencing with Genome Detective's cloud-based pipeline, her team unravelled the introduction routes and evolutionary dynamics of tomato leaf curl New Delhi virus, Mediterranean strain (ToLCNDV-ES), in southeastern France. They succeeded in turning a laborious cloning-based workflow into a rapid, browser-native surveillance tool for circular DNA plant viruses.

Published September 14, 2026

Confronting an emerging threat to Mediterranean agriculture

At INRAE's Pathologie Végétale unit in Montfavet, Cécile Desbiez leads research on the viruses that threaten France's cucurbit and solanaceous crops. Since ToLCNDV-ES was first detected in southeastern France in 2020 and re-emerged in 2022, the pressure to understand its origin, host range and evolutionary trajectory has only grown. Operating across production regions in Gard, Bouches-du-Rhône and Vaucluse, and working alongside European partners under the EU Horizon 2020 Virtigation project, Desbiez's team needed a way to move beyond fragmentary Sanger data toward complete, population-level genome reconstructions.

"Bipartite begomoviruses like ToLCNDV-ES don't invade alone. Samples often carry mixed haplotypes and reassortant genome combinations," Desbiez explains. "To understand the invasion, we needed a workflow that could actually see that diversity."

Wild perennial cucurbit Ecballium elaterium (squirting cucumber) with yellowing symptoms infected with ToLCNDV.
Stunted and yellowing zucchini plant infected with ToLCNDV.
Plant hosts showing symptoms associated with tomato leaf curl New Delhi virus: A. Wild perennial cucurbit Ecballium elaterium (squirting cucumber) with yellowing symptoms. B. Stunted and yellowing zucchini plant.

Overcoming the cloning bottleneck for circular DNA viruses

Historically, characterising the intra-host diversity of circular single-stranded DNA viruses required laborious cloning of individual genome components, followed by Sanger sequencing of many colonies per sample. The approach is slow, expensive and prone to artefactual recombination signals. By pairing rolling-circle amplification with Oxford Nanopore long-read sequencing and processing the resulting reads on the Genome Detective platform, the INRAE team, including Dr. Eric Verdin and Dr. Adriana (Atiwich) Patthamapornsirikul, was able to reconstruct full-length DNA-A and DNA-B segments - and their co-circulating haplotypes - directly from field samples.

The sequencing protocol was originally developed at KU Leuven University, including researchers Victor Golyaev and Hervé Vanderschuren. The sequencings mentioned in this article were performed by Victor Golyaev in the laboratory of Hervé Vanderschuren. In preparation, the INRAE team discussed with them about the choice of isolates to sequence and sent them the DNAs, and afterwards, executed the analyses of the sequencing results.

"The Genome Detective platform allow us to go from raw Nanopore reads to a curated consensus and a haplotype map in one place, without hand-crafting a cloning pipeline for every sample," Desbiez notes. "That changes what is realistic to sequence at surveillance scale."

Examples of Genome Detective results reconstructing tomato leaf curl New Delhi virus haplotypes and assigning them at species or subtype level
Examples of Genome Detective results reconstructing ToLCNDV haplotypes and assigning them at the species or subtype level.

Reconstructing invasion history with long-read genomics

Applied to 48 French isolates collected between 2020 and 2024 and benchmarked against 110 Mediterranean references, the workflow revealed that French isolates are polyphyletic within the Mediterranean clade. They split into two DNA-A and four DNA-B subgroups consistent with multiple independent introduction events between 2018 and 2021.

The ancestral nodes dated in 2010-2013, at the time of emergence in southern Spain, are an indication of diversification (in Spain or elsewhere in the Mediterranean Basin) before the introduction in France. The same molecular ToLCNDV groups found in France between 2020 and 2024, suggests local persistence. Since the populations in weeds were the same as in crops, the persistence was supposedly in these weeds, from weed reservoirs such as Datura stramonium and Ecballium elaterium.

Bayesian analyses showed DNA-B evolving roughly twice as fast as DNA-A, and a single positively selected codon (position 147) in the coat protein - uniformly encoding serine in French isolates - hinted at ongoing adaptive change.

Researchers performing long-read sequencing of tomato leaf curl New Delhi virus
Laboratory work supporting long-read sequencing of tomato leaf curl New Delhi virus
A. Patthamapornsirikul, V. Golyaev and C. Desbiez performing long-read sequencing of ToLCNDV.

A scalable framework for plant-virus surveillance

The visual outputs and structured reports provided by Genome Detective cover maps, phylogenies, haplotype summaries and copiable consensus sequences. They proved as valuable for downstream epidemiological interpretation as for the underlying genome reconstruction. The findings, published in PLOS Pathogens (Desbiez et al., 2026), now inform quarantine measures, weed-management practice and resistance-breeding priorities for Mediterranean cucurbit and tomato production. As Desbiez and colleagues conclude in their paper: "Long-read sequencing paired with a cloud analysis pipeline offers a scalable framework for surveillance of circular DNA plant viruses. The approach provide insights broadly relevant for understanding evolutionary trajectories of emerging viral pathogens."

The research has led to the ToLCNDV subtyping tool, integrated into the Genome Detective platform.

The Virtigation project has received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement No 101000570.

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This project has received funding from the European Union's research and innovation programme under Grant Agreement 634650 and 101000570.

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