On-Chip Titration of an Anticoagulant Argatroban and Determination of the Clotting Time within Whole Blood or Plasma Using a Plug-Based Microfluidic System
- 24 May 2006
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 78 (14) , 4839-4849
- https://doi.org/10.1021/ac0601718
Abstract
This paper describes extending plug-based microfluidics to handling complex biological fluids such as blood, solving the problem of injecting additional reagents into plugs, and applying this system to measuring of clotting time in small volumes of whole blood and plasma. Plugs are droplets transported through microchannels by fluorocarbon fluids. A plug-based microfluidic system was developed to titrate an anticoagulant (argatroban) into blood samples and to measure the clotting time using the activated partial thromboplastin time (APTT) test. To carry out these experiments, the following techniques were developed for a plug-based system: (i) using Teflon AF coating on the microchannel wall to enable formation of plugs containing blood and transport of the solid fibrin clots within plugs, (ii) using a hydrophilic glass capillary to enable reliable merging of a reagent from an aqueous stream into plugs, (iii) using bright-field microscopy to detect the formation of a fibrin clot within plugs and using fluorescent microscopy to detect the production of thrombin using a fluorogenic substrate, and (iv) titration of argatroban (0−1.5 μg/mL) into plugs and measurement of the resulting APTTs at room temperature (23 °C) and physiological temperature (37 °C). APTT measurements were conducted with normal pooled plasma (platelet-poor plasma) and with donor's blood samples (both whole blood and platelet-rich plasma). APTT values and APTT ratios measured by the plug-based microfluidic device were compared to the results from a clinical laboratory at 37 °C. APTT obtained from the on-chip assay were about double those from the clinical laboratory but the APTT ratios from these two methods agreed well with each other.Keywords
This publication has 109 references indexed in Scilit:
- Patient self‐testing is a reliable and acceptable alternative to laboratory INR monitoringBritish Journal of Haematology, 2004
- Electrowetting-Based Microfluidics for Analysis of Peptides and Proteins by Matrix-Assisted Laser Desorption/Ionization Mass SpectrometryAnalytical Chemistry, 2004
- Minimal Functional Model of Hemostasis in a Biomimetic Microfluidic SystemAngewandte Chemie International Edition in English, 2004
- Droplet-based microfluidic lab-on-a-chip for glucose detectionAnalytica Chimica Acta, 2004
- Experimental test of scaling of mixing by chaotic advection in droplets moving through microfluidic channelsApplied Physics Letters, 2003
- Vesicles and Polymerized Vesicles from Thiophene‐Containing Rod–Coil Block CopolymersAngewandte Chemie International Edition in English, 2003
- Whole Blood Diagnostics in Standard Gravity and Microgravity by Use of Microfluidic Structures (T-Sensors)Microchimica Acta, 1999
- Simultaneous multiple injection in monosegmented flow analysisAnalytica Chimica Acta, 1998
- The consequences of imperfect mixing in autocatalytic chemical and biological systemsNature, 1995
- Experimental comparison of flow-injection analysis and air-segmented continuous flow analysisAnalytica Chimica Acta, 1986