Cargando…

Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells

Approximately 25% of patients with congenital heart disease require implantation of patches to repair. However, most of the currently available patches are made of inert materials with unmatched electrical conductivity and mechanical properties, which may lead to an increased risk for arrhythmia and...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhao, Long-Mei, Wang, Long, Zhang, Wen-Qian, Wang, Rui, Zhang, Xiu-Zhen, Lei, Xiong-Xin, Liang, Yan, Song, Yu-Ting, Zhang, Qing-Yi, Lin, Ke, Xie, Hui-Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8897693/
https://www.ncbi.nlm.nih.gov/pubmed/35310356
http://dx.doi.org/10.1016/j.bioactmat.2021.11.021
_version_ 1784663483709652992
author Zhao, Long-Mei
Wang, Long
Zhang, Wen-Qian
Wang, Rui
Zhang, Xiu-Zhen
Lei, Xiong-Xin
Liang, Yan
Song, Yu-Ting
Zhang, Qing-Yi
Lin, Ke
Xie, Hui-Qi
author_facet Zhao, Long-Mei
Wang, Long
Zhang, Wen-Qian
Wang, Rui
Zhang, Xiu-Zhen
Lei, Xiong-Xin
Liang, Yan
Song, Yu-Ting
Zhang, Qing-Yi
Lin, Ke
Xie, Hui-Qi
author_sort Zhao, Long-Mei
collection PubMed
description Approximately 25% of patients with congenital heart disease require implantation of patches to repair. However, most of the currently available patches are made of inert materials with unmatched electrical conductivity and mechanical properties, which may lead to an increased risk for arrhythmia and heart failure. In this study, we have developed a novel Polyurethane/Small intestinal submucosa patch (PSP) with mechanical and electrical properties similar to those of the native myocardial tissue, and assessed its feasibility for the reconstruction of right ventricular outflow tract. A right ventricular outflow tract reconstruction model was constructed in 40 rabbits. Compared with commercially available bovine pericardium patch, the PSP patch has shown better histocompatibility and biodegradability, in addition with significantly improved cardiac function. To tackle the significant fibrosis and relatively poor vascularization during tissue remodeling, we have further developed a bioactive patch by incorporating the PSP composites with urine-derived stem cells (USCs) which were pretreated with hypoxia. The results showed that the hypoxia-pretreated bioactive patch could significantly inhibit fibrosis and promote vascularization and muscularization, resulting in better right heart function. Our findings suggested that the PSP patch combined with hypoxia-pretreated USCs may provide a better strategy for the treatment of congenital heart disease.
format Online
Article
Text
id pubmed-8897693
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher KeAi Publishing
record_format MEDLINE/PubMed
spelling pubmed-88976932022-03-17 Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells Zhao, Long-Mei Wang, Long Zhang, Wen-Qian Wang, Rui Zhang, Xiu-Zhen Lei, Xiong-Xin Liang, Yan Song, Yu-Ting Zhang, Qing-Yi Lin, Ke Xie, Hui-Qi Bioact Mater Article Approximately 25% of patients with congenital heart disease require implantation of patches to repair. However, most of the currently available patches are made of inert materials with unmatched electrical conductivity and mechanical properties, which may lead to an increased risk for arrhythmia and heart failure. In this study, we have developed a novel Polyurethane/Small intestinal submucosa patch (PSP) with mechanical and electrical properties similar to those of the native myocardial tissue, and assessed its feasibility for the reconstruction of right ventricular outflow tract. A right ventricular outflow tract reconstruction model was constructed in 40 rabbits. Compared with commercially available bovine pericardium patch, the PSP patch has shown better histocompatibility and biodegradability, in addition with significantly improved cardiac function. To tackle the significant fibrosis and relatively poor vascularization during tissue remodeling, we have further developed a bioactive patch by incorporating the PSP composites with urine-derived stem cells (USCs) which were pretreated with hypoxia. The results showed that the hypoxia-pretreated bioactive patch could significantly inhibit fibrosis and promote vascularization and muscularization, resulting in better right heart function. Our findings suggested that the PSP patch combined with hypoxia-pretreated USCs may provide a better strategy for the treatment of congenital heart disease. KeAi Publishing 2021-11-30 /pmc/articles/PMC8897693/ /pubmed/35310356 http://dx.doi.org/10.1016/j.bioactmat.2021.11.021 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Zhao, Long-Mei
Wang, Long
Zhang, Wen-Qian
Wang, Rui
Zhang, Xiu-Zhen
Lei, Xiong-Xin
Liang, Yan
Song, Yu-Ting
Zhang, Qing-Yi
Lin, Ke
Xie, Hui-Qi
Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title_full Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title_fullStr Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title_full_unstemmed Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title_short Promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
title_sort promotion of right ventricular outflow tract reconstruction using a novel cardiac patch incorporated with hypoxia-pretreated urine-derived stem cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8897693/
https://www.ncbi.nlm.nih.gov/pubmed/35310356
http://dx.doi.org/10.1016/j.bioactmat.2021.11.021
work_keys_str_mv AT zhaolongmei promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT wanglong promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT zhangwenqian promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT wangrui promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT zhangxiuzhen promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT leixiongxin promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT liangyan promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT songyuting promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT zhangqingyi promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT linke promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells
AT xiehuiqi promotionofrightventricularoutflowtractreconstructionusinganovelcardiacpatchincorporatedwithhypoxiapretreatedurinederivedstemcells