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PMID: 30428602 Published · epublish English Journal Article Retracted Publication

Transcatheter Decellularized Tissue-Engineered Heart Valve (dTEHV) Grown on Polyglycolic Acid (PGA) Scaffold Coated with P4HB Shows Improved Functionality over 52 Weeks due to Polyether-Ether-Ketone (PEEK) Insert.

Journal of functional biomaterials ·Vol. 9 ·No. 4 ·2018-11-13

Bruder L, Spriestersbach H, Brakmann K, Stegner V, Sigler M, Berger F, Schmitt B

Abstract

Many congenital heart defects and degenerative valve diseases require replacement of heart valves in children and young adults. Transcatheter xenografts degenerate over time. Tissue engineering might help to overcome this limitation by providing valves with ability for self-repair. A transcatheter decellularized tissue-engineered heart valve (dTEHV) was developed using a polyglycolic acid (PGA) scaffold. A first prototype showed progressive regurgitation after 6 months in-vivo due to a suboptimal design and misguided remodeling process. A new geometry was developed accordingly with computational fluid dynamics (CFD) simulations and implemented by adding a polyether-ether-ketone (PEEK) insert to the bioreactor during cultivation. This lead to more belly-shaped leaflets with higher coaptation areas for this second generation dTEHV. Valve functionality assessed via angiography, intracardiac echocardiography, and MRI proved to be much better when compared the first generation dTEHV, with preserved functionality up to 52 weeks after implantation. Macroscopic findings showed no thrombi or signs of acute inflammation. For the second generation dTEHV, belly-shaped leaflets with soft and agile tissue-formation were seen after explantation. No excessive leaflet shortening occurred in the second generation dTEHV. Histological analysis showed complete engraftment of the dTEHV, with endothelialization of the leaflets and the graft wall. Leaflets consisted of collagenous tissue and some elastic fibers. Adaptive leaflet remodeling was visible in all implanted second generation dTEHV, and most importantly no fusion between leaflet and wall was found. Very few remnants of the PGA scaffold were detected even 52 weeks after implantation, with no influence on functionality. By adding a polyether-ether-ketone (PEEK) insert to the bioreactor construct, a new geometry of PGA-scaffold based dTEHV could be implemented. This resulted in very good valve function of the implanted dTEHV over a period of 52 weeks.

Keywords
heart valve scaffold tissue-engineering
作者与单位
共 7 位作者,点击展开单位 / ORCID
Bruder Leon
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Spriestersbach Hendrik
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Brakmann Kerstin
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Stegner Valentin ORCID
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Sigler Matthias ORCID
Universitätsmedizin Göttingen, Herzzentrum Göttingen, Department of Pediatric Cardiology, 37075 Göttingen, Germany. [email protected].
Berger Felix
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Schmitt Boris
Deutsches Herzzentrum Berlin, Department of Congenital Heart Disease, 13353 Berlin, Germany. [email protected].
Article Info
Journal
Journal of functional biomaterials
Abbr.
J Funct Biomater
ISSN
2079-4983
Published
2018-11-13
电子出版
2018-00-13
Language
English
Country/Region
Switzerland
NLM ID
101570734
基金资助
Seventh Framework Programme · 242008
勘误 / 撤稿关联
RetractionIn
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