A Label Free Disposable Device for Rapid Isolation of Rare Tumor Cells from Blood by Ultrasounds

The use of blood samples as liquid biopsy is a label-free method for cancer diagnosis that offers benefits over traditional invasive biopsy techniques. Cell sorting by acoustic waves offers a means to separate rare cells from blood samples based on their physical properties in a label-free, contactl...

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Detalhes bibliográficos
Autores: Gonzalez, Itziar, Earl, Julie, Fernandez, Luis J., Sainz, Jr., Bruno, Pinto, Alberto, Monge, Rosa, Alcala, Sonia, Castillejo, Adela, Soto, Jose L., Carrato, Alfredo
Formato: artículo
Estado:Versión publicada
Fecha de publicación:2018
País:España
Recursos:Fundación para el Fomento de la Investigación Sanitaria y Biomédica de la Comunitat Valenciana (FISABIO)
Repositorio:r-FISABIO. Repositorio Institucional de Producción Científica
OAI Identifier:oai:fisabio.fundanetsuite.com:p2990
Acesso em linha:https://fisabio.portalinvestigacion.com/publicaciones/2990
Access Level:acceso abierto
Palavra-chave:tumor cell isolation
ultrasounds
low-cost
microfluidics
plate acoustic waves
Descrição
Resumo:The use of blood samples as liquid biopsy is a label-free method for cancer diagnosis that offers benefits over traditional invasive biopsy techniques. Cell sorting by acoustic waves offers a means to separate rare cells from blood samples based on their physical properties in a label-free, contactless and biocompatible manner. Herein, we describe a flow-through separation approach that provides an efficient separation of tumor cells (TCs) from white blood cells (WBCs) in a microfluidic device, "THINUS-Chip" (Thin-Ultrasonic-Separator-Chip), actuated by ultrasounds. We introduce for the first time the concept of plate acoustic waves (PAW) applied to acoustophoresis as a new strategy. It lies in the geometrical chip design: different to other microseparators based on either bulk acoustic waves (BAW) or surface waves (SAW, SSAW and tSAW), it allows the use of polymeric materials without restrictions in the frequency of work. We demonstrate its ability to perform high-throughput isolation of TCs from WBCs, allowing a recovery rate of 84% +/- 8% of TCs with a purity higher than 80% and combined viability of 85% at a flow rate of 80 mu L/min (4.8 mL/h). The THINUS-Chip performs cell fractionation with low-cost manufacturing processes, opening the door to possible easy printing fabrication.