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Application of microfluidic devices in studies of thrombosis and hemostasis

  • SUNY Buffalo

Research output: Contribution to journalReview articlepeer-review

38 Scopus citations

Abstract

Due to the importance of fluid flow during thrombotic episodes, it is quite appropriate to study clotting and bleeding processes in devices that have well-defined fluid shear environments. Two common devices for applying these defined shear stresses include the cone-and-plate viscometer and parallel-plate flow chamber. While such tools have many salient features, they require large amounts of blood or other protein components. With growth in the area of microfluidics over the last two decades, it has become feasible to miniaturize such flow devices. Such miniaturization not only enables saving of precious samples but also increases the throughput of fluid shear devices, thus enabling the design of combinatorial experiments and making the technique more accessible to the larger scientific community. In addition to simple flows that are common in traditional flow apparatus, more complex geometries that mimic stenosed arteries and the human microvasculature can also be generated. The composition of the microfluidics cell substrate can also be varied for diverse basic science investigations, and clinical investigations that aim to assay either individual patient coagulopathy or response to anti-coagulation treatment. This review summarizes the current state of the art for such microfluidic devices and their applications in the field of thrombosis and hemostasis.

Original languageEnglish
Pages (from-to)434-440
Number of pages7
JournalPlatelets
Volume28
Issue number5
DOIs
StatePublished - Jul 4 2017

Keywords

  • complex flow
  • flow chamber
  • fluid shear
  • microfluidics
  • PDMS
  • platelets
  • point-of-care
  • stenosis
  • thrombosis
  • VWF

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