Diagnostic microchip to assay 3D colony-growth potential of captured circulating tumor cells. 2012

Colette A Bichsel, and Samy Gobaa, and Stefan Kobel, and Chiara Secondini, and George N Thalmann, and Marco G Cecchini, and Matthias P Lutolf
School of Life Sciences, Institute of Bioengineering and Laboratory of Stem Cell Bioengineering, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

Microfluidic technology has been successfully applied to isolate very rare tumor-derived epithelial cells (circulating tumor cells, CTCs) from blood with relatively high yield and purity, opening up exciting prospects for early detection of cancer. However, a major limitation of state-of-the-art CTC-chips is their inability to characterize the behavior and function of captured CTCs, for example to obtain information on proliferative and invasive properties or, ultimately, tumor re-initiating potential. Although CTCs can be efficiently immunostained with markers reporting phenotype or fate (e.g. apoptosis, proliferation), it has not yet been possible to reliably grow captured CTCs over long periods of time and at single cell level. It is challenging to remove CTCs from a microchip after capture, therefore such analyses should ideally be performed directly on-chip. To address this challenge, we merged CTC capture with three-dimensional (3D) tumor cell culture on the same microfluidic platform. PC3 prostate cancer cells were isolated from spiked blood on a transparent PDMS CTC-chip, encapsulated on-chip in a biomimetic hydrogel matrix (QGel™) that was formed in situ, and their clonal 3D spheroid growth potential was assessed by microscopy over one week in culture. The possibility to clonally expand a subset of captured CTCs in a near-physiological in vitro model adds an important element to the expanding CTC-chip toolbox that ultimately should improve prediction of treatment responses and disease progression.

UI MeSH Term Description Entries
D008164 Luminescent Proteins Proteins which are involved in the phenomenon of light emission in living systems. Included are the "enzymatic" and "non-enzymatic" types of system with or without the presence of oxygen or co-factors. Bioluminescent Protein,Bioluminescent Proteins,Luminescent Protein,Photoprotein,Photoproteins,Protein, Bioluminescent,Protein, Luminescent,Proteins, Bioluminescent,Proteins, Luminescent
D008297 Male Males
D009360 Neoplastic Cells, Circulating Exfoliate neoplastic cells circulating in the blood and associated with metastasizing tumors. Circulating Neoplastic Cells,Embolic Tumor Cells,Embolism, Tumor,Neoplasm Circulating Cells,Tumor Cells, Embolic,Cells, Neoplasm Circulating,Circulating Cells, Neoplasm,Circulating Tumor Cells,Cell, Circulating Neoplastic,Cell, Circulating Tumor,Cell, Embolic Tumor,Cell, Neoplasm Circulating,Cells, Circulating Neoplastic,Cells, Circulating Tumor,Cells, Embolic Tumor,Circulating Neoplastic Cell,Circulating Tumor Cell,Embolic Tumor Cell,Embolisms, Tumor,Neoplasm Circulating Cell,Neoplastic Cell, Circulating,Tumor Cell, Circulating,Tumor Cell, Embolic,Tumor Cells, Circulating,Tumor Embolism,Tumor Embolisms
D011471 Prostatic Neoplasms Tumors or cancer of the PROSTATE. Cancer of Prostate,Prostate Cancer,Cancer of the Prostate,Neoplasms, Prostate,Neoplasms, Prostatic,Prostate Neoplasms,Prostatic Cancer,Cancer, Prostate,Cancer, Prostatic,Cancers, Prostate,Cancers, Prostatic,Neoplasm, Prostate,Neoplasm, Prostatic,Prostate Cancers,Prostate Neoplasm,Prostatic Cancers,Prostatic Neoplasm
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000097573 Red Fluorescent Protein Protein analogs and derivatives of the Disocosoma red fluorescent protein that emit a red-orange light (FLUORESCENCE) when excited with ULTRAVIOLET RAYS. They are used as REPORTER GENES and FLUORESCENT PROBES for MICROSCOPY of living cells and organisms. FP593,drFP583,ds red protein,dsFP593
D045744 Cell Line, Tumor A cell line derived from cultured tumor cells. Tumor Cell Line,Cell Lines, Tumor,Line, Tumor Cell,Lines, Tumor Cell,Tumor Cell Lines
D046210 Microfluidic Analytical Techniques Methods utilizing the principles of MICROFLUIDICS for sample handling, reagent mixing, and separation and detection of specific components in fluids. Microfluidic Analysis,Analyses, Microfluidic,Analysis, Microfluidic,Analytical Technique, Microfluidic,Analytical Techniques, Microfluidic,Microfluidic Analyses,Microfluidic Analytical Technique,Technique, Microfluidic Analytical,Techniques, Microfluidic Analytical
D046228 Microarray Analysis The simultaneous analysis, on a microchip, of multiple samples or targets arranged in an array format. Microarray Analytical Devices,Microarray Microchips,Nanoarray Analytical Devices,Analysis, Microarray,Analytical Device, Microarray,Analytical Device, Nanoarray,Analytical Devices, Microarray,Analytical Devices, Nanoarray,Device, Microarray Analytical,Device, Nanoarray Analytical,Devices, Microarray Analytical,Devices, Nanoarray Analytical,Microarray Analytical Device,Microarray Microchip,Microchip, Microarray,Microchips, Microarray,Nanoarray Analytical Device
D018929 Cell Culture Techniques Methods for maintaining or growing CELLS in vitro. Cell Culture,Cell Culture Technique,Cell Cultures,Culture Technique, Cell,Culture Techniques, Cell

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