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Lab on a Chip|March 24, 2012
An inertia enhanced passive pumping mechanism for fluid flow in microfluidic devicesPedro J Resto, Erwin Berthier, David J Beebe, et al.
Frontiers in Oncology|April 25, 2022
Models of Renal Cell Carcinoma Used to Investigate Molecular Mechanisms and Develop New TherapeuticsDaniel D Shapiro, Maria Virumbrales-Muñoz, David J Beebe, et al.
The Journal of Biological Chemistry|June 9, 2012
The actin regulatory protein HS1 interacts with Arp2/3 and mediates efficient neutrophil chemotaxisPeter J Cavnar, Kevin Mogen, Erwin Berthier, et al.
Analytical Chemistry|July 18, 2014
Fluorescence-based assessment of plasma-induced hydrophilicity in microfluidic devices via Nile Red adsorption and depletionDavid J Guckenberger, Erwin Berthier, Edmond W K Young, et al.
Journal of Laboratory Automation|October 22, 2013
Exclusion-Based Capture and Enumeration of CD4+ T Cells from Whole Blood for Low-Resource SettingsAlexander L Howard, Hannah M Pezzi, David J Beebe, et al.
Lab on a Chip|April 25, 2008
Automated cell culture in high density tubeless microfluidic device arraysIvar Meyvantsson, Jay W Warrick, Steven Hayes, et al.
Nature Communications|June 2, 2022
A role for microfluidic systems in precision medicineJose M Ayuso, María Virumbrales-Muñoz, Joshua M Lang, et al.
Biomacromolecules|October 30, 2010
Development of macroporous poly(ethylene glycol) hydrogel arrays within microfluidic channelsAndrew G Lee, Christopher P Arena, David J Beebe, et al.
Analytical Chemistry|March 4, 2009
Self-assembled peptide monolayers as a toxin sensing mechanism within arrayed microchannelsMegan L Frisk, William H Tepp, Eric A Johnson, et al.
Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences|August 13, 2004
An externally driven magnetic microstirrerGlennys A Mensing, Thomas M Pearce, Michael D Graham, et al.
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