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Detection of Invasive Mosquito Vectors Using Environmental DNA (eDNA) from Water Samples
Judith Schneider1, Alice Valentini2, Tony Dejean2
1Laboratory for Conservation Biology, Department of Ecology and Evolution, University of Lausanne, Biophore, CH-1015, Lausanne, Switzerland.
Abstract:
Repeated introductions and spread of invasive mosquito species (IMS) have been recorded on a large scale these last decades worldwide. In this context, members of the mosquito genus Aedes can present serious risks to public health as they have or may develop vector competence for various viral diseases. While the Tiger mosquito (Aedes albopictus) is a well-known vector for e.g. dengue and chikungunya viruses, the Asian bush mosquito (Ae. j. japonicus) and Ae. koreicus have shown vector competence in the field and the laboratory for a number of viruses including dengue, West Nile fever and Japanese encephalitis. Early detection and identification is therefore crucial for successful eradication or control strategies. Traditional specific identification and monitoring of different and/or cryptic life stages of the invasive Aedes species based on morphological grounds may lead to misidentifications, and are problematic when extensive surveillance is needed. In this study, we developed, tested and applied an environmental DNA (eDNA) approach for the detection of three IMS, based on water samples collected in the field in several European countries. We compared real-time quantitative PCR (qPCR) assays specific for these three species and an eDNA metabarcoding approach with traditional sampling, and discussed the advantages and limitations of these methods. Detection probabilities for eDNA-based approaches were in most of the specific comparisons higher than for traditional survey and the results were congruent between both molecular methods, confirming the reliability and efficiency of alternative eDNA-based techniques for the early and unambiguous detection and surveillance of invasive mosquito vectors. The ease of water sampling procedures in the eDNA approach tested here allows the development of large-scale monitoring and surveillance programs of IMS, especially using citizen science projects.
Insights
Environmental DNA (eDNA) offers a reliable and efficient method for detecting invasive mosquito species (IMS). This approach surpasses traditional methods, enabling large-scale surveillance and early identification of disease vectors.
Area of Science:
- Environmental science
- Molecular biology
- Public health entomology
Background:
- Invasive mosquito species (IMS) pose significant global public health risks due to their potential as vectors for viral diseases like dengue and West Nile fever.
- Established monitoring methods, relying on morphological identification, are often inaccurate and inefficient for large-scale surveillance of cryptic or varied life stages.
Purpose of the Study:
- To develop, test, and apply an environmental DNA (eDNA) approach for the early detection and surveillance of three key invasive Aedes mosquito species.
- To compare the efficacy of eDNA-based methods (qPCR and metabarcoding) against traditional morphological identification techniques.
Main Methods:
- Water samples were collected from various European field sites.
- Real-time quantitative PCR (qPCR) assays and eDNA metabarcoding were employed for species-specific detection.
- Results were compared with traditional mosquito sampling and identification methods.
Main Results:
- eDNA-based approaches demonstrated higher detection probabilities compared to traditional surveys for invasive mosquito species.
- Congruent results between the two molecular eDNA methods (qPCR and metabarcoding) validated their reliability.
- The study confirmed the efficiency of eDNA techniques for early and unambiguous detection of invasive mosquito vectors.
Conclusions:
- Environmental DNA offers a highly effective and reliable alternative for the early detection and surveillance of invasive mosquito species.
- The simplicity of water sampling facilitates large-scale monitoring programs, potentially integrating citizen science initiatives.
- This approach is crucial for managing public health risks associated with vector-borne diseases transmitted by invasive mosquitoes.

