A potential future Fontan modification: preliminary in vitro data of a pressure-generating tube from engineered heart tissue

Author:

Köhne Maria123,Behrens Charlotta Sophie23,Stüdemann Tim23,Bibra Constantin von23,Querdel Eva23,Shibamiya Aya23,Geertz Birgit2,Olfe Jakob4ORCID,Hüners Ida1ORCID,Jockenhövel Stefan5,Hübler Michael1,Eschenhagen Thomas23ORCID,Sachweh Jörg Siegmar13,Weinberger Florian23ORCID,Biermann Daniel13ORCID

Affiliation:

1. Department of Congenital and Pediatric Heart Surgery, Children's Heart Clinic, University Heart & Vascular Center, University Medical Center Hamburg-Eppendorf , Hamburg, Germany

2. Institute of Experimental Pharmacology and Toxicology, University Medical Center Hamburg-Eppendorf , Hamburg, Germany

3. German Centre for Cardiovascular Research (DZHK), Partner Site Hamburg/Kiel/Lübeck , Hamburg, Germany

4. Department of Pediatric Cardiology, Children's Heart Clinic, University Heart & Vascular Center, University Medical Center Hamburg-Eppendorf , Hamburg, Germany

5. Department of Biohybrid & Medical Textiles (Biotex), RWTH Aachen University , Aachen, Germany

Abstract

Abstract OBJECTIVES Univentricular malformations are severe cardiac lesions with limited therapeutic options and a poor long-term outcome. The staged surgical palliation (Fontan principle) results in a circulation in which venous return is conducted to the pulmonary arteries via passive laminar flow. We aimed to generate a contractile subpulmonary neo-ventricle from engineered heart tissue (EHT) to drive pulmonary flow actively. METHODS A three-dimensional tubular EHT (1.8-cm length, 6-mm inner diameter, ca. 1-mm wall thickness) was created by casting human-induced pluripotent stem cell-derived cardiomyocytes (0.9 ml, 18 mio/ml) embedded in a fibrin-based hydrogel around a silicone tube. EHTs were cultured under continuous, pulsatile flow through the silicone tube for 23 days. RESULTS The constructs started to beat macroscopically at days 8–14 and remained stable in size and shape over the whole culture period. Tubular EHTs showed a coherent beating pattern after 23 days in culture, and isovolumetric pressure measurements demonstrated a coherent pulsatile wave formation with an average frequency of 77 ± 5 beats/min and an average pressure of 0.2 mmHg. Histological analysis revealed cardiomyocytes mainly localized along the inner and outer curvature of the tubular wall with mainly longitudinal alignment. Cell density in the center of the tubular wall was lower. CONCLUSIONS A simple tube-shaped contractile EHT was generated from human-induced pluripotent stem cells and developed a synchronous beating pattern. Further steps need to focus on optimizing support materials, flow rates and geometry to obtain a construct that creates sufficient pressures to support a directed and pulsatile blood flow.

Funder

Stiftung Kinderherz, Germany

Publisher

Oxford University Press (OUP)

Subject

Cardiology and Cardiovascular Medicine,Pulmonary and Respiratory Medicine,General Medicine,Surgery

Reference26 articles.

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