Literature DB >> 23103694

Design and in vitro assessment of an improved, low-resistance compliant thoracic artificial lung.

Rebecca E Schewe1, Khalil M Khanafer, Aarthi Arab, Jeffrey A Mitchell, David J Skoog, Keith E Cook.   

Abstract

Current thoracic artificial lungs (TALs) have blood flow impedances greater than the natural lungs, which can result in abnormal pulmonary hemodynamics. This study investigated the impedance and gas transfer performance of a compliant TAL (cTAL). Fluid-structure interaction analysis was performed using ADINA (ADINA R&D Inc., Watertown, MA) to examine the effect of the inlet and outlet expansion angle, θ, on device impedance and blood flow patterns. Based on the results, the θ = 45° model was chosen for prototyping and in vitro testing. Glycerol was pumped through this cTAL at 2, 4, and 6 L/min at 80 and 100 beats/min, and the zeroth and first harmonic impedance moduli, Z(0) and Z(1), were calculated. Gas transfer testing was conducted at blood flow rates of 3, 5, and 7 L/min. Fluid-structure interaction results indicated that the 45° model had an ideal combination of low impedance and even blood flow patterns and was thus chosen for prototyping. In vitro, Z(0) = 0.53 ± 0.06 mm Hg/(L/min) and Z(1) = 0.86 ± 0.08 mm Hg/(L/min) at 4 L/min and 100 beats/min. Outlet PO(2) and SO(2) values were above 200 mm Hg and 99.5%, respectively, at each flow rate. Thus, the cTAL had lower impedance than hard shell TALs and excellent gas transfer.

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Year:  2012        PMID: 23103694      PMCID: PMC3538888          DOI: 10.1097/MAT.0b013e31826dcd23

Source DB:  PubMed          Journal:  ASAIO J        ISSN: 1058-2916            Impact factor:   2.872


  8 in total

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Journal:  ASAIO J       Date:  2005 Jul-Aug       Impact factor: 2.872

2.  Thoracic artificial lung impedance studies using computational fluid dynamics and in vitro models.

Authors:  Rebecca E Schewe; Khalil M Khanafer; Ryan A Orizondo; Keith E Cook
Journal:  Ann Biomed Eng       Date:  2011-10-19       Impact factor: 3.934

3.  In vivo hemodynamic responses to thoracic artificial lung attachment.

Authors:  Carrie E Perlman; Keith E Cook; J Ralf Seipelt; J Constantine Mavroudis; J Carl L Backer; Lyle F Mockros
Journal:  ASAIO J       Date:  2005 Jul-Aug       Impact factor: 2.872

4.  In vitro fluid mechanical effects of thoracic artificial lung compliance.

Authors:  John W McGillicuddy; Sean D Chambers; Darren T Galligan; Ronald B Hirschl; Robert H Bartlett; Keith E Cook
Journal:  ASAIO J       Date:  2005 Nov-Dec       Impact factor: 2.872

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Authors:  Jeongho Kim; Hitoshi Sato; Grant W Griffith; Keith E Cook
Journal:  ASAIO J       Date:  2009 Jan-Feb       Impact factor: 2.872

6.  Fluid-structure interaction analysis of turbulent pulsatile flow within a layered aortic wall as related to aortic dissection.

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8.  Hemodynamic design requirements for in-series thoracic artificial lung attachment in a model of pulmonary hypertension.

Authors:  Begum Akay; Julie A Foucher; Daniele Camboni; Kelly L Koch; Ayushi Kawatra; Keith E Cook
Journal:  ASAIO J       Date:  2012 Jul-Aug       Impact factor: 2.872

  8 in total
  11 in total

1.  Fourteen Day In Vivo Testing of a Compliant Thoracic Artificial Lung.

Authors:  David J Skoog; Joshua R Pohlmann; David S Demos; Christopher N Scipione; Amit Iyengar; Rebecca E Schewe; Ahmed B Suhaib; Kelly L Koch; Keith E Cook
Journal:  ASAIO J       Date:  2017 Sep/Oct       Impact factor: 2.872

2.  Early in vivo experience with the pediatric continuous-flow total artificial heart.

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3.  Fiber Bundle Design for an Integrated Wearable Artificial Lung.

Authors:  Shalv P Madhani; Brian J Frankowski; William J Federspiel
Journal:  ASAIO J       Date:  2017 Sep/Oct       Impact factor: 2.872

4.  In vitro and in vivo evaluation of a novel integrated wearable artificial lung.

Authors:  Shalv P Madhani; Brian J Frankowski; Greg W Burgreen; Jim F Antaki; Robert Kormos; Jonathan D'Cunha; William J Federspiel
Journal:  J Heart Lung Transplant       Date:  2017-03-04       Impact factor: 10.247

5.  Use of a low-resistance compliant thoracic artificial lung in the pulmonary artery to pulmonary artery configuration.

Authors:  Christopher N Scipione; Rebecca E Schewe; Kelly L Koch; Andrew W Shaffer; Amit Iyengar; Keith E Cook
Journal:  J Thorac Cardiovasc Surg       Date:  2013-02-10       Impact factor: 5.209

6.  Darcy Permeability of Hollow Fiber Membrane Bundles Made from Membrana Polymethylpentene Fibers Used in Respiratory Assist Devices.

Authors:  Shalv P Madhani; Brandon D D'Aloiso; Brian Frankowski; William J Federspiel
Journal:  ASAIO J       Date:  2016 May-Jun       Impact factor: 2.872

7.  In Vivo 5 Day Animal Studies of a Compact, Wearable Pumping Artificial Lung.

Authors:  Shalv P Madhani; Brian J Frankowski; Sang-Ho Ye; Greg W Burgreen; William R Wagner; Robert Kormos; Jonathan D'Cunha; William J Federspiel
Journal:  ASAIO J       Date:  2019-01       Impact factor: 2.872

8.  Low-Resistance, Concentric-Gated Pediatric Artificial Lung for End-Stage Lung Failure.

Authors:  Alex J Thompson; Skylar Buchan; Benjamin Carr; Clinton Poling; McKenzie Hayes; Uditha Piyumindri Fernando; Andreas Kaesler; Peter Schlanstein; Felix Hesselmann; Jutta Arens; Joseph A Potkay; Alvaro Rojas-PeÑa; Robert H Bartlett; Ronald B Hirschl
Journal:  ASAIO J       Date:  2020-04       Impact factor: 3.826

9.  First in vivo assessment of RAS-Q technology as lung support device for pulmonary hypertension.

Authors:  Tom Verbelen; Michael Halwes; Bart Meyns
Journal:  Int J Artif Organs       Date:  2020-09-10       Impact factor: 1.595

Review 10.  The Roles of Membrane Technology in Artificial Organs: Current Challenges and Perspectives.

Authors:  Bao Tran Duy Nguyen; Hai Yen Nguyen Thi; Bich Phuong Nguyen Thi; Dong-Ku Kang; Jeong F Kim
Journal:  Membranes (Basel)       Date:  2021-03-28
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