Impedimetric melanoma invasion assay device using a simple paper membrane and stencil-printed electrode on PMMA substrate
Tài liệu tham khảo
Rosel, 2017, Migrastatics—anti-metastatic and anti-invasion drugs: promises and challenges, Trends Cancer, 3, 391, 10.1016/j.trecan.2017.04.008
Marshall, 2011, 97
Teresiak, 2018, 2D and 3D cell cultures–a comparison of different types of cancer cell cultures, Arch Med Sci, 14, 910
Sahai, 2005, Mechanisms of cancer cell invasion, Curr Opin Genet Dev, 15, 87, 10.1016/j.gde.2004.12.002
Vinci, 2015, Three-dimensional (3D) tumor spheroid invasion assay, JoVE, e52686
Holy, 2015, A cancer cell spheroid assay to assess invasion in a 3D setting, JoVE, 10, e53409
Pupinyo, 2019, In situ paper-based 3D cell culture for rapid screening of the anti-melanogenic activity, Ananlyst, 144, 290, 10.1039/C8AN01725E
Derda, 2009, Paper supported 3D cell culture for tissue-based bioassays, PNAS, 106, 18457, 10.1073/pnas.0910666106
Derda, 2011, Tissue Papers: leveraging paper-based microfluidics for the next generation of 3D tissue models, Plos One, 6, e18940, 10.1371/journal.pone.0018940
Liu, 2014, Electrochemical device based on a Pt nanosphere-paper working electrode for in situ and real-time determination of the flux of H2O2 releasing from SK-BR-3 cancer cells, Chem. Commun., 50, 10315, 10.1039/C4CC04199B
Cramer, 2019, Tissue Papers: leveraging paper-based microfluidics for the next generation of 3D tissue models, Anal. Chem., 10916, 10.1021/acs.analchem.9b02102
Kenney, 2016, Real-time imaging of cancer cell chemotaxis in paper-based scaffolds, Analyst, 141, 661, 10.1039/C5AN01787D
Dabiri, 2014, Three‐dimensional paper‐based model for cardiac ischemia, Adv. Healthc Mater., 3, 1036, 10.1002/adhm.201300575
Sapp, 2015, Multilayer three-dimensional filter paper constructs for the culture and analysis of aortic valvular interstitial cells, Acta Biomater., 13, 199, 10.1016/j.actbio.2014.11.039
Wei, 2013, Study on microenvironment acidification by microfluidic chip with multilayer-paper supported breast cancer tissue, Chinese J. Anal. Chem., 41, 822, 10.1016/S1872-2040(13)60661-1
Kim, 2012, Successful vitrification of bovine blastocysts on paper containe, Theriogenology, 78, 1085, 10.1016/j.theriogenology.2012.05.004
Lee, 2013, An efficient and mass reproducible method for vitrifying mouse embryos on a paper in cryotubes, Cryobiology, 66, 311, 10.1016/j.cryobiol.2013.03.009
Lockett, 2015, A paper-based invasion assay: assessing chemotaxis of cancer cells in gradients of oxygen, Biomaterials, 53, 262
Lei, 2016, Impedimetric quantification of cells encapsulated in hydrogel cultured in a paper-based microchamber, Talanta, 147, 628, 10.1016/j.talanta.2015.10.052
Lei, 2018, Towards a high throughput impedimetric screening of chemosensitivity of cancer cells suspended in hydrogel and cultured in a paper substrate, Biosens. Bioelectron., 100, 355, 10.1016/j.bios.2017.09.029
Tonello, 2019, Monitoring Caco-2 to enterocyte-like cells differentiation by means of electric impedance analysis on printed sensors, Biochim. Biophys. Acta, 1863, 893, 10.1016/j.bbagen.2019.02.008
Um, 2019, Conditioned media from adipocytes promote proliferation, migration, and invasion in melanoma and colorectal cancer cells, J. Cell. Physiol., 234, 18249, 10.1002/jcp.28456
Lei, 2016, Quantitative study of cell invasion process under extracellular stimulation of cytokine in a microfluidic device, Sci. Rep., 6, 1, 10.1038/srep25557
Oefner, 2017, A microfluidics assay to study invasion of human placental trophoblast cells, J. R. Soc. Interface, 14, 20170131, 10.1098/rsif.2017.0131
Guo, 2016, Cancer-associated fibroblasts promote non-small cell lung cancer cell invasion by upregulation of glucose-regulated protein 78 (GRP78) expression in an integrated bionic microfluidic device, Oncotarget, 7, 25593, 10.18632/oncotarget.8232
Toh, 2018, A 3D microfluidic model to recapitulate cancer cell migration and invasion, Bioengineering, 5, 29, 10.3390/bioengineering5020029
Chiriacò, 2011, Automatic transwell assay by an EIS cell chip to monitor cell migration, Lab Chip, 11, 4081, 10.1039/c1lc20540d
Carrilho, 2009, Understanding wax printing: a simple micropatterning process for paper-based microfluidics, Anal. Chem., 81, 7091, 10.1021/ac901071p
Pellitero, 2016, Rapid prototyping of electrochemical lateral flow devices: stencilled electrodes, Analyst, 141.8, 2515, 10.1039/C5AN02424B
Wang, 2004, Application of real-time cell electronic sensing (RT-CES) technology to cell-based assays, Assay Drug Dev. Technol., 2, 363, 10.1089/adt.2004.2.363
Sluyters, 1960, On the impedance of galvanic cells: I. theory, Recueil Des Travaux Chimiques Des Pays‐Bas, 79, 1092, 10.1002/recl.19600791013
Kolli, 2015, TEER measurement techniques for in vitro barrier model systems, J. Lab Autom., 20, 107, 10.1177/2211068214561025
Yúfera, 2011, Cell biometrics based on bio-impedance measurements, Adv. Biometric Technol., 17, 343
Caviglia, 2015, Interdependence of initial cell density, drug concentration and exposure time revealed by real-time impedance spectroscopic cytotoxicity assay, Analyst, 140, 3623, 10.1039/C5AN00097A
Li, 2002, Insulin-like growth factor-I-induced migration of melanoma cells is mediated by interleukin-8 induction, Cell Growth Differ., 13, 87
All-Ericsson, 2002, Insulin-like growth factor-1 receptor in uveal melanoma: a predictor for metastatic disease and a potential therapeutic target, IOVS, 43, 1
Girnita, 2006, The insulin-like growth factor-I receptor inhibitor picropodophyllin causes tumor regression and attenuates mechanisms involved in invasion of uveal melanoma cells, Clin. Cancer Res, 12, 1383, 10.1158/1078-0432.CCR-05-1106
Hanahan, 2011, Hallmarks of cancer: the next generation, Cell, 144, 646, 10.1016/j.cell.2011.02.013