Lab on chips for liquid biopsy: a flexible and customized approach through microfabrication.

Cancer early detection is one of the most challenging purposes of preventive medicine. Liquid biopsy represents a revolutionary approach, fostering access to early screening and increasing patients’ compliance, two crucial issues in reaching the largest possible audience in prevention campaigns. To...

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Publicado en:Biomedical Microdevices Vol. 27; no. 2; pp. 1 - 13
Autores principales: Garzarelli, Valeria, Foscarini, Alessia, Indirli, Vanessa, Menon, Ilaria, Mangiullo, Diego, Verri, Tiziano, Primiceri, Elisabetta, Nigro, Annamaria, Quattrini, Angelo, Romano, Alessandro, Chiriacò, Maria Serena, Gigli, Giuseppe, Ferrara, Francesco
Formato: Journal Article
Publicado: Springer Nature Jun2025
Acceso en línea:Ver este registro en EBSCOhost
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        atl: Lab on chips for liquid biopsy: a flexible and customized approach through microfabrication.
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          Garzarelli, Valeria
          Foscarini, Alessia
          Indirli, Vanessa
          Menon, Ilaria
          Mangiullo, Diego
          Verri, Tiziano
          Primiceri, Elisabetta
          Nigro, Annamaria
          Quattrini, Angelo
          Romano, Alessandro
          Chiriacò, Maria Serena
          Gigli, Giuseppe
          Ferrara, Francesco
        affil: https://ror.org/0042e5975 CNR NANOTEC– Institute of Nanotechnology, via per Monteroni, 73100, Lecce, Italy
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      ab: Cancer early detection is one of the most challenging purposes of preventive medicine. Liquid biopsy represents a revolutionary approach, fostering access to early screening and increasing patients’ compliance, two crucial issues in reaching the largest possible audience in prevention campaigns. To facilitate this approach, the deployment of innovative methods for easy manipulation of biological fluids and the availability of devices for the rapid and low-cost detection of biomarkers is essential. The aim of this study was the optimization of multifunctional Lab-On-Chips with the final aim of realizing a platform for oral carcinoma cells trapping from a complex biological fluid as saliva and for specific subcellular components like extracellular vesicles (EVs) from the neuroblastoma cell model. A set of different microfluidic building blocks was realized through poly-methyl methacrylate (PMMA) micromilling, microfabricated and functionalized to optimize surface chemistry for capturing tumor cells or EVs in multiple channels, assess working concentration for biological fluids and combine sample preparation with detection modules all in the same chip. After optimization, a proof-of-concept device was realized mimicking liquid biopsy analysis from saliva, a biological fluid readily available and with a high compliance from patients, useful for the early diagnosis of cancer.
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    language: English
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