4.8 Article

Off-the-shelf human decellularized tissue-engineered heart valves in a non-human primate model

期刊

BIOMATERIALS
卷 34, 期 30, 页码 7269-7280

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2013.04.059

关键词

Heart valve tissue engineering; Tissue regeneration; Decellularization; Preclinical in vivo model; Minimally invasive; Homologous valve replacement

资金

  1. Swiss South African Joint Research Programme of the State Secretariat for Education and Research
  2. Swiss Government
  3. South African Government [EX25-2010]
  4. Swiss National Science Foundation [32-122273, 310030-143 992, 124090]
  5. 7th Framework Programme - Life Valve of the European Commission [242008]
  6. Research Infrastructure Support Programme [UID 65720]
  7. National Research Foundation
  8. Department of Science and Technology South Africa, the University Research Committee University of Cape Town
  9. Claude Leon Foundation
  10. Centre d'Imagerie BioMedicale (CIBM) of the UNIL
  11. Centre d'Imagerie BioMedicale (CIBM) of the UNIGE
  12. Centre d'Imagerie BioMedicale (CIBM) of the HUG
  13. Centre d'Imagerie BioMedicale (CIBM) of the CHUV
  14. Centre d'Imagerie BioMedicale (CIBM) of the EPFL
  15. Leenaards Foundation
  16. Jeantet Foundation

向作者/读者索取更多资源

Heart valve tissue engineering based on decellularized xenogenic or allogenic starter matrices has shown promising first clinical results. However, the availability of healthy homologous donor valves is limited and xenogenic materials are associated with infectious and immunologic risks. To address such limitations, biodegradable synthetic materials have been successfully used for the creation of living autologous tissue-engineered heart valves (TEHVs) in vitro. Since these classical tissue engineering technologies necessitate substantial infrastructure and logistics, we recently introduced decellularized TEHVs (dTEHVs), based on biodegradable synthetic materials and vascular-derived cells, and successfully created a potential off-the-shelf starter matrix for guided tissue regeneration. Here, we investigate the host repopulation capacity of such dTEHVs in a non-human primate model with up to 8 weeks follow-up. After minimally invasive delivery into the orthotopic pulmonary position, dTEHVs revealed mobile and thin leaflets after 8 weeks of follow-up. Furthermore, mild-moderate valvular insufficiency and relative leaflet shortening were detected. However, in comparison to the decellularized human native heart valve control - representing currently used homografts - dTEHVs showed remarkable rapid cellular repopulation. Given this substantial in situ remodeling capacity, these results suggest that human cell-derived bioengineered decellularized materials represent a promising and clinically relevant starter matrix for heart valve tissue engineering. These biomaterials may ultimately overcome the limitations of currently used valve replacements by providing homologous, non-immunogenic, off-the-shelf replacement constructs. (C) 2013 Elsevier Ltd. All rights reserved.

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