Literature DB >> 22760254

Endothelialized microfluidics for studying microvascular interactions in hematologic diseases.

David R Myers1, Yumiko Sakurai, Reginald Tran, Byungwook Ahn, Elaissa Trybus Hardy, Robert Mannino, Ashley Kita, Michelle Tsai, Wilbur A Lam.   

Abstract

Advances in microfabrication techniques have enabled the production of inexpensive and reproducible microfluidic systems for conducting biological and biochemical experiments at the micro- and nanoscales (1,2). In addition, microfluidics have also been specifically used to quantitatively analyze hematologic and microvascular processes, because of their ability to easily control the dynamic fluidic environment and biological conditions(3-6). As such, researchers have more recently used microfluidic systems to study blood cell deformability, blood cell aggregation, microvascular blood flow, and blood cell-endothelial cell interactions(6-13).However, these microfluidic systems either did not include cultured endothelial cells or were larger than the sizescale relevant to microvascular pathologic processes. A microfluidic platform with cultured endothelial cells that accurately recapitulates the cellular, physical, and hemodynamic environment of the microcirculation is needed to further our understanding of the underlying biophysical pathophysiology of hematologic diseases that involve the microvasculature. Here, we report a method to create an "endothelialized" in vitro model of the microvasculature, using a simple, single mask microfabrication process in conjunction with standard endothelial cell culture techniques, to study pathologic biophysical microvascular interactions that occur in hematologic disease. This "microvasculature-on-a-chip" provides the researcher with a robust assay that tightly controls biological as well as biophysical conditions and is operated using a standard syringe pump and brightfield/fluorescence microscopy. Parameters such as microcirculatory hemodynamic conditions, endothelial cell type, blood cell type(s) and concentration(s), drug/inhibitory concentration etc., can all be easily controlled. As such, our microsystem provides a method to quantitatively investigate disease processes in which microvascular flow is impaired due to alterations in cell adhesion, aggregation, and deformability, a capability unavailable with existing assays.

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Year:  2012        PMID: 22760254      PMCID: PMC3471282          DOI: 10.3791/3958

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  15 in total

1.  Sickle cell vasoocclusion and rescue in a microfluidic device.

Authors:  J M Higgins; D T Eddington; S N Bhatia; L Mahadevan
Journal:  Proc Natl Acad Sci U S A       Date:  2007-12-12       Impact factor: 11.205

Review 2.  Macro- and microscale fluid flow systems for endothelial cell biology.

Authors:  Edmond W K Young; Craig A Simmons
Journal:  Lab Chip       Date:  2009-10-09       Impact factor: 6.799

3.  Functional endothelialized microvascular networks with circular cross-sections in a tissue culture substrate.

Authors:  Jeffrey T Borenstein; Malinda M Tupper; Peter J Mack; Eli J Weinberg; Ahmad S Khalil; James Hsiao; Guillermo García-Cardeña
Journal:  Biomed Microdevices       Date:  2010-02       Impact factor: 2.838

4.  The dual nature of extracellular ATP as a concentration-dependent platelet P2X1 agonist and antagonist.

Authors:  Welvitya Karunarathne; Chia-Jui Ku; Dana M Spence
Journal:  Integr Biol (Camb)       Date:  2009-10-06       Impact factor: 2.192

5.  Haemolytic uraemic syndrome: prognostic factors.

Authors:  D A Green; W G Murphy; W S Uttley
Journal:  Clin Lab Haematol       Date:  2000-02

6.  Analyzing cell mechanics in hematologic diseases with microfluidic biophysical flow cytometry.

Authors:  Michael J Rosenbluth; Wilbur A Lam; Daniel A Fletcher
Journal:  Lab Chip       Date:  2008-06-05       Impact factor: 6.799

Review 7.  The level of laboratory testing required for diagnosis or exclusion of a platelet function disorder using platelet aggregation and secretion assays.

Authors:  Diego Mezzano; Teresa Quiroga; Jaime Pereira
Journal:  Semin Thromb Hemost       Date:  2009-04-30       Impact factor: 4.180

8.  A physiologically realistic in vitro model of microvascular networks.

Authors:  Jenna M Rosano; Nazanin Tousi; Robert C Scott; Barbara Krynska; Victor Rizzo; Balabhaskar Prabhakarpandian; Kapil Pant; Shivshankar Sundaram; Mohammad F Kiani
Journal:  Biomed Microdevices       Date:  2009-05-19       Impact factor: 2.838

9.  A shear gradient-dependent platelet aggregation mechanism drives thrombus formation.

Authors:  Warwick S Nesbitt; Erik Westein; Francisco Javier Tovar-Lopez; Elham Tolouei; Arnan Mitchell; Jia Fu; Josie Carberry; Andreas Fouras; Shaun P Jackson
Journal:  Nat Med       Date:  2009-06       Impact factor: 53.440

Review 10.  Microfluidic technology in vascular research.

Authors:  A D van der Meer; A A Poot; M H G Duits; J Feijen; I Vermes
Journal:  J Biomed Biotechnol       Date:  2009-11-10
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  28 in total

1.  Resolving the multifaceted mechanisms of the ferric chloride thrombosis model using an interdisciplinary microfluidic approach.

Authors:  Jordan C Ciciliano; Yumiko Sakurai; David R Myers; Meredith E Fay; Beatrice Hechler; Shannon Meeks; Renhao Li; J Brandon Dixon; L Andrew Lyon; Christian Gachet; Wilbur A Lam
Journal:  Blood       Date:  2015-04-30       Impact factor: 22.113

2.  Endothelial cell culture in microfluidic devices for investigating microvascular processes.

Authors:  Robert G Mannino; Yongzhi Qiu; Wilbur A Lam
Journal:  Biomicrofluidics       Date:  2018-05-15       Impact factor: 2.800

Review 3.  The platelet and the biophysical microenvironment: lessons from cellular mechanics.

Authors:  Jordan C Ciciliano; Reginald Tran; Yumiko Sakurai; Wilbur A Lam
Journal:  Thromb Res       Date:  2014-01-04       Impact factor: 3.944

4.  Hematocrit significantly confounds diffuse correlation spectroscopy measurements of blood flow.

Authors:  Eashani Sathialingam; Evelyn Kendall Williams; Seung Yup Lee; Courtney E McCracken; Wilbur A Lam; Erin M Buckley
Journal:  Biomed Opt Express       Date:  2020-07-29       Impact factor: 3.732

Review 5.  Getting a good view: in vitro imaging of platelets under flow.

Authors:  Oluwamayokun Oshinowo; Tamara Lambert; Yumiko Sakurai; Renee Copeland; Caroline E Hansen; Wilbur A Lam; David R Myers
Journal:  Platelets       Date:  2020-02-28       Impact factor: 3.862

6.  Cellular softening mediates leukocyte demargination and trafficking, thereby increasing clinical blood counts.

Authors:  Meredith E Fay; David R Myers; Amit Kumar; Cory T Turbyfield; Rebecca Byler; Kaci Crawford; Robert G Mannino; Alvin Laohapant; Erika A Tyburski; Yumiko Sakurai; Michael J Rosenbluth; Neil A Switz; Todd A Sulchek; Michael D Graham; Wilbur A Lam
Journal:  Proc Natl Acad Sci U S A       Date:  2016-02-08       Impact factor: 11.205

7.  Simplified prototyping of perfusable polystyrene microfluidics.

Authors:  Reginald Tran; Byungwook Ahn; David R Myers; Yongzhi Qiu; Yumiko Sakurai; Robert Moot; Emma Mihevc; H Trent Spencer; Christopher Doering; Wilbur A Lam
Journal:  Biomicrofluidics       Date:  2014-07-30       Impact factor: 2.800

Review 8.  Emerging point-of-care technologies for sickle cell disease screening and monitoring.

Authors:  Yunus Alapan; Arwa Fraiwan; Erdem Kucukal; M Noman Hasan; Ryan Ung; Myeongseop Kim; Isaac Odame; Jane A Little; Umut A Gurkan
Journal:  Expert Rev Med Devices       Date:  2016-11-22       Impact factor: 3.166

9.  Engineering "Endothelialized" Microfluidics for Investigating Vascular and Hematologic Processes Using Non-Traditional Fabrication Techniques.

Authors:  Robert G Mannino; Navaneeth Kr Pandian; Abhishek Jain; Wilbur A Lam
Journal:  Curr Opin Biomed Eng       Date:  2017-12-05

10.  Development and Characterization of In Vitro Microvessel Network and Quantitative Measurements of Endothelial [Ca2+]i and Nitric Oxide Production.

Authors:  Sulei Xu; Xiang Li; Yuxin Liu; Pingnian He
Journal:  J Vis Exp       Date:  2016-05-19       Impact factor: 1.355

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