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Fast detection of pathogens in salmon farming industry

Authors :
Eva Jakob
Sandra Oyanedel
Fabiane M. Nachtigall
Xaviera A. López-Cortés
Leonardo S. Santos
Veronica Diaz
Macarena Araya
Verónica Rachel Olate
Mauricio Rios-Momberg
Source :
Aquaculture. 470:17-24
Publication Year :
2017
Publisher :
Elsevier BV, 2017.

Abstract

Piscirickettsia salmonis and Caligus rogercresseyi are highly transmissible pathogens that cause high mortality in farmed salmonids. Detection of them, in most cases are well characterized for being time consuming and expensive. In this way, new techniques based on mass spectrometry and machine learning were applied and combined in an automatized platform in order to classify and predict these pathogens, in a faster and effective way. MALDI-MS was used to analyze serum samples from salmonid fishes (healthy and diseased) coupled to support vector machines analysis in order to obtain a specific and sensitive pattern ( m/z ) for every pathogen with high reproducibility. The results probed that combining these two techniques a powerful tool in the correct detection of these pathogens is obtained. Accuracy, sensitivity and specificity were equal to or > 92%, implying the good performance of our platform as a potential diagnostic tool in the salmon farming industry.

Details

ISSN :
00448486
Volume :
470
Database :
OpenAIRE
Journal :
Aquaculture
Accession number :
edsair.doi...........c328eb678c06158d11f1b4775a279179
Full Text :
https://doi.org/10.1016/j.aquaculture.2016.12.008