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Original Article

Material Effects in Shear-Induced Hemolysis

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Pages 359-391 | Published online: 11 Jul 2009

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Read on this site (5)

T.M. Alkhamis & R.L. Beissinger. (1995) Surface and bulk effects on platelet adhesion and aggregation during simple (laminar) shear flow of whole blood. Journal of Biomaterials Science, Polymer Edition 6:4, pages 343-358.
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A. Kobayashi, M. Goto, K. Kobayashi & T. Akaike. (1995) Receptor-mediated regulation of differentiation and proliferation of hepatocytes by synthetic polymer model of asialoglycoprotein. Journal of Biomaterials Science, Polymer Edition 6:4, pages 325-342.
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Joseph M. Monroe, Robert C. Lijana & Michael C. Williams. (1980) Hemolytic Properties of Special Materials Exposed to a Shear Flow, and Plasma Changes with Shear. Biomaterials, Medical Devices, and Artificial Organs 8:2, pages 103-144.
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Richard D. Offeman & Michael C. Williams. (1979) Observations on Shear-Induced Hemolysis. Biomaterials, Medical Devices, and Artificial Organs 7:3, pages 393-420.
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Robert W. Benedict & Michael C. Williams. (1979) Hemolysis with Red Cell Covered Surfaces. Biomaterials, Medical Devices, and Artificial Organs 7:4, pages 457-475.
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Articles from other publishers (18)

Tommaso Gallingani, Elisa Resca, Massimo Dominici, Giuliana Gavioli, Romolo Laurita, Anna Liguori, Giorgio Mari, Luca Ortolani, Eva Pericolini, Arianna Sala, Giulia Laghi, Tiziana Petrachi, Gaëlle Francoise Arnauld, Luca Accorsi, Rita Rizzoli, Vittorio Colombo, Matteo Gherardi & Elena Veronesi. (2023) A new strategy to prevent biofilm and clot formation in medical devices: The use of atmospheric non-thermal plasma assisted deposition of silver-based nanostructured coatings. PLOS ONE 18:2, pages e0282059.
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. 2020. ANSI/AAMI/ISO 10993-4:2017; Biological evaluation of medical devices—Part 4: Selection of tests for interactions with blood. ANSI/AAMI/ISO 10993-4:2017; Biological evaluation of medical devices—Part 4: Selection of tests for interactions with blood.
Kenneth M. Alfano, Sumita Chakraborty & Michael Tarasev. (2016) Differences in bead-milling-induced hemolysis of red blood cells due to shape and size of oscillating bead. Bio-Medical Materials and Engineering 27:4, pages 405-412.
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Hans-Dietrich Polaschegg. (2009) Red Blood Cell Damage from Extracorporeal Circulation in Hemodialysis. Seminars in Dialysis 22:5, pages 524-531.
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S. Saraf, D. Wellsted, S. Sharma & D.A. Gorog. (2009) Shear-induced global thrombosis test of native blood: Pivotal role of ADP allows monitoring of P2Y12 antagonist therapy. Thrombosis Research 124:4, pages 447-451.
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Melanie Andara, Arvind Agarwal, Dirk Scholvin, Rosario A. Gerhardt, Anand Doraiswamy, Chunming Jin, Roger J. Narayan, Chun-Che Shih, Chun-Ming Shih, Shing-Jong Lin & Yea-Yang Su. (2006) Hemocompatibility of diamondlike carbon–metal composite thin films. Diamond and Related Materials 15:11-12, pages 1941-1948.
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Osamu Maruyama, Yusuke Numata, Masahiro Nishida, Takashi Yamane, Ikuya Oshima, Yoshikazu Adachi & Toru Masuzawa. (2005) Hemolysis caused by surface roughness under shear flow. Journal of Artificial Organs 8:4, pages 228-236.
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Drukker, Parsons & MaherHans-Dietrich Polaschegg & Nathan W. Levin. 2004. Replacement of Renal Function by Dialysis. Replacement of Renal Function by Dialysis 325 449 .
David A. Armitage, Terry L. Parker & David M. Grant. (2003) Biocompatibility and hemocompatibility of surface-modified NiTi alloys. Journal of Biomedical Materials Research 66A:1, pages 129-137.
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Ming–Chien Yang & Chi–Chang Lin. (2000) In Vitro Characterization of the Occurrence of Hemolysis During Extracorporeal Blood Circulation Using a Mini Hemodialyzer. ASAIO Journal 46:3, pages 293-297.
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M.I Jones, I.R McColl, D.M Grant, K.G Parker & T.L Parker. (1999) Haemocompatibility of DLC and TiC–TiN interlayers on titanium. Diamond and Related Materials 8:2-5, pages 457-462.
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Yoshiyuki Takami, Kenzo Makinouchi, Tadashi Nakazawa, Julie Glueck, Robert Benkowski & Yukihiko Nose. (2008) Effect of Surface Roughness on Hemolysis in a Pivot Bearing Supported Gyro Centrifugal Pump (C1E3). Artificial Organs 20:11, pages 1155-1161.
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Regina M. Lohrer, Axel R. Trammer, Wolf Dietrich, Siegfried Hagl & Otwin Linderkamp. (1990) The influence of extracorporeal circulation and hemoseparation on red cell deformability and membrane proteins in coronary artery disease. The Journal of Thoracic and Cardiovascular Surgery 99:4, pages 735-740.
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R. L. Beissinger & Jean‐Francois Laugel. (2004) Low‐stress hemolysis in laminar blood flow: Bulk and surface effects in capillaries. AIChE Journal 33:1, pages 99-108.
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Robert C. Lijana & Michael C. Williams. (1986) The effects of antibiotics on hemolytic behavior of red cells. Cell Biophysics 8:4, pages 223-242.
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Jie Chen, J.D. Andrade & R.A. VanWagenen. (1985) Oxy- and deoxyhaemoglobin adsorption onto glass and polymer surfaces. Biomaterials 6:4, pages 231-236.
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R. L. Beissinger & M. C. Williams. (2004) A dual mechanism for low‐stress hemolysis in laminar blood flow. AIChE Journal 30:4, pages 569-577.
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Joseph M. Monroe, Douglas E. True & Michael C. Williams. (2004) Surface roughness and edge geometries in hemolysis with rotating disk flow. Journal of Biomedical Materials Research 15:6, pages 923-939.
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