Literature DB >> 27418522

Flow Preconditioning of Endothelial Cells on Collagen-Immobilized Silicone Fibers Enhances Cell Retention and Antithrombotic Function.

Nasim Salehi-Nik1,2,3, Seyedeh Parnian Banikarimi1,2, Ghassem Amoabediny1,2, Behdad Pouran4,5, Mohammad Ali Shokrgozar6, Behrouz Zandieh-Doulabi3, Jenneke Klein-Nulend3.   

Abstract

Stability and antithrombotic functionality of endothelial cells on silicone hollow fibers (SiHFs) are critical in the development of biohybrid artificial lungs. Here we aimed to enhance endothelial cell retention and anti-thrombotic function by low (12 dyn/cm2 , 24 h) fluid shear stress ("flow") preconditioning of endothelial cells seeded on collagen-immobilized SiHFs. The response of endothelial cells without preconditioning (48 h static culture) and with preconditioning (24 h static culture followed by 24 h flow preconditioning) on hollow fibers to high fluid shear stress (30 dyn/cm2 , 1 h) was assessed in a parallel-plate flow chamber. Finite element (FE) modeling was used to simulate shear stress within the flow chamber. We found that collagen immobilization on hollow fibers using carbodiimide bonds provided sufficient stability to high shear stress. Flow preconditioning for 24 h before treatment with high shear stress for 1 h on collagen-immobilized hollow fibers increased cell retention (1.3-fold). The FE model showed that cell flattening due to flow preconditioning reduced maximum shear stress on cells by 32%. Flow preconditioning prior to exposure to high fluid shear stress enhanced the production of nitric oxide (1.3-fold) and prostaglandin I2 (1.2-fold). In conclusion, flow preconditioning of endothelial cells on collagen-immobilized SiHFs enhanced cell retention and antithrombotic function, which could significantly improve current biohybrid artificial lungs.
© 2016 International Center for Artificial Organs and Transplantation and Wiley Periodicals, Inc.

Entities:  

Keywords:  Antithrombotic function; Biohybrid artificial lung; Collagen immobilization; Endothelialization; Finite element modeling; Fluid shear stress

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Year:  2016        PMID: 27418522     DOI: 10.1111/aor.12759

Source DB:  PubMed          Journal:  Artif Organs        ISSN: 0160-564X            Impact factor:   3.094


  2 in total

1.  Deoxynivalenol induces structural alterations in epidermoid carcinoma cells A431 and impairs the response to biomechanical stimulation.

Authors:  Giorgia Del Favero; Lydia Woelflingseder; Lukas Janker; Benjamin Neuditschko; Stefano Seriani; Paolo Gallina; Orfeo Sbaizero; Christopher Gerner; Doris Marko
Journal:  Sci Rep       Date:  2018-07-27       Impact factor: 4.379

2.  EndOxy: Dynamic Long-Term Evaluation of Endothelialized Gas Exchange Membranes for a Biohybrid Lung.

Authors:  Sarah Klein; Felix Hesselmann; Suzana Djeljadini; Tanja Berger; Anja Lena Thiebes; Thomas Schmitz-Rode; Stefan Jockenhoevel; Christian G Cornelissen
Journal:  Ann Biomed Eng       Date:  2019-11-21       Impact factor: 3.934

  2 in total

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