Hyperspectral image processing for the identification and quantification of lentiviral particles in fluid samples

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URI: http://hdl.handle.net/10498/25717
DOI: 10.1038/s41598-021-95756-3
ISSN: 2045-2322
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Gómez‑González, Emilio; Fernández‑Muñoz, Beatriz; Barriga‑Rivera, Alejandro; Navas‑García, José Manuel; Fernández‑Lizaranzu, Isabel; Munoz‑González, Francisco Javier; Parrilla‑Giráldez, Rubén; Requena‑Lancharro, Desiree; Guerrero‑Claro, Manuel; Gil‑Gamboa, Pedro; Rosell‑Valle, Crsitina; Gómez‑González, Carmen; Mayorga‑Buiza, Maria José; Martín‑López, María; Muñoz, Olga; Gómez Martín, Juan Carlos; Relimpio López, María Isabel; Aceituno‑Castro, Jesús; Perales‑Esteve, Manuel A.; Puppo‑Moreno, Antonio; García Cózar, Francisco José
; Olvera Collantes, Lucía
; de los Santos‑Trigo, Silvia; Gómez, Emilia; Sánchez Pernaute, Rosario; Padillo‑Ruiz, Javier; Márquez‑Rivas, Javier
Date
2021-08Department
Biomedicina, Biotecnología y Salud PúblicaSource
Sci Rep 11, 16201 (2021)Abstract
Optical spectroscopic techniques have been commonly used to detect the presence of biofilm-forming pathogens (bacteria and fungi) in the agro-food industry. Recently, near-infrared (NIR) spectroscopy revealed that it is also possible to detect the presence of viruses in animal and vegetal tissues. Here we report a platform based on visible and NIR (VNIR) hyperspectral imaging for non-contact, reagent free detection and quantification of laboratory-engineered viral particles in fluid samples (liquid droplets and dry residue) using both partial least square-discriminant analysis and artificial feed-forward neural networks. The detection was successfully achieved in preparations of phosphate buffered solution and artificial saliva, with an equivalent pixel volume of 4 nL and lowest concentration of 800 TU.mu L-1. This method constitutes an innovative approach that could be potentially used at point of care for rapid mass screening of viral infectious diseases and monitoring of the SARS-CoV- 2 pandemic.
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