Cargando…

Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes

Small-diameter tissue-engineered vascular grafts (sdTEVGs) with hyperglycemia resistance have not been constructed. The intimal hyperplasia caused by hyperglycemia remains problem to hinder the patency of sdTEVGs. Here, inspired by bionic regulation of nerve on vascular, we found the released neural...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Yanzhao, Wang, Yeqin, Xue, Fangchao, Feng, Xuli, Ba, Zhaojing, Chen, Junjie, Zhou, Zhenhua, Wang, Yanhong, Guan, Ge, Yang, Guanyuan, Xi, Ziwei, Tian, Hao, Liu, Yong, Tan, Ju, Li, Gang, Chen, Xiewan, Yang, Mingcan, Chen, Wen, Zhu, Chuhong, Zeng, Wen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8379357/
https://www.ncbi.nlm.nih.gov/pubmed/34466746
http://dx.doi.org/10.1016/j.bioactmat.2021.05.034
_version_ 1783740988375695360
author Li, Yanzhao
Wang, Yeqin
Xue, Fangchao
Feng, Xuli
Ba, Zhaojing
Chen, Junjie
Zhou, Zhenhua
Wang, Yanhong
Guan, Ge
Yang, Guanyuan
Xi, Ziwei
Tian, Hao
Liu, Yong
Tan, Ju
Li, Gang
Chen, Xiewan
Yang, Mingcan
Chen, Wen
Zhu, Chuhong
Zeng, Wen
author_facet Li, Yanzhao
Wang, Yeqin
Xue, Fangchao
Feng, Xuli
Ba, Zhaojing
Chen, Junjie
Zhou, Zhenhua
Wang, Yanhong
Guan, Ge
Yang, Guanyuan
Xi, Ziwei
Tian, Hao
Liu, Yong
Tan, Ju
Li, Gang
Chen, Xiewan
Yang, Mingcan
Chen, Wen
Zhu, Chuhong
Zeng, Wen
author_sort Li, Yanzhao
collection PubMed
description Small-diameter tissue-engineered vascular grafts (sdTEVGs) with hyperglycemia resistance have not been constructed. The intimal hyperplasia caused by hyperglycemia remains problem to hinder the patency of sdTEVGs. Here, inspired by bionic regulation of nerve on vascular, we found the released neural exosomes could inhibit the abnormal phenotype transformation of vascular smooth muscle cells (VSMCs). The transformation was a prime culprit causing the intimal hyperplasia of sdTEVGs. To address this concern, sdTEVGs were modified with an on-demand programmable dual-responsive system of ultrathin hydrogels. An external primary Reactive Oxygen Species (ROS)-responsive Netrin-1 system was initially triggered by local inflammation to induce nerve remolding of the sdTEVGs overcoming the difficulty of nerve regeneration under hyperglycemia. Then, the internal secondary ATP-responsive DENND1A (guanine nucleotide exchange factor) system was turned on by the neurotransmitter ATP from the immigrated nerve fibers to stimulate effective release of neural exosomes. The results showed nerve fibers grow into the sdTEVGs in diabetic rats 30 days after transplantation. At day 90, the abnormal VSMCs phenotype was not detected in the sdTEVGs, which maintained long-time patency without intima hyperplasia. Our study provides new insights to construct vascular grafts resisting hyperglycemia damage.
format Online
Article
Text
id pubmed-8379357
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher KeAi Publishing
record_format MEDLINE/PubMed
spelling pubmed-83793572021-08-30 Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes Li, Yanzhao Wang, Yeqin Xue, Fangchao Feng, Xuli Ba, Zhaojing Chen, Junjie Zhou, Zhenhua Wang, Yanhong Guan, Ge Yang, Guanyuan Xi, Ziwei Tian, Hao Liu, Yong Tan, Ju Li, Gang Chen, Xiewan Yang, Mingcan Chen, Wen Zhu, Chuhong Zeng, Wen Bioact Mater Article Small-diameter tissue-engineered vascular grafts (sdTEVGs) with hyperglycemia resistance have not been constructed. The intimal hyperplasia caused by hyperglycemia remains problem to hinder the patency of sdTEVGs. Here, inspired by bionic regulation of nerve on vascular, we found the released neural exosomes could inhibit the abnormal phenotype transformation of vascular smooth muscle cells (VSMCs). The transformation was a prime culprit causing the intimal hyperplasia of sdTEVGs. To address this concern, sdTEVGs were modified with an on-demand programmable dual-responsive system of ultrathin hydrogels. An external primary Reactive Oxygen Species (ROS)-responsive Netrin-1 system was initially triggered by local inflammation to induce nerve remolding of the sdTEVGs overcoming the difficulty of nerve regeneration under hyperglycemia. Then, the internal secondary ATP-responsive DENND1A (guanine nucleotide exchange factor) system was turned on by the neurotransmitter ATP from the immigrated nerve fibers to stimulate effective release of neural exosomes. The results showed nerve fibers grow into the sdTEVGs in diabetic rats 30 days after transplantation. At day 90, the abnormal VSMCs phenotype was not detected in the sdTEVGs, which maintained long-time patency without intima hyperplasia. Our study provides new insights to construct vascular grafts resisting hyperglycemia damage. KeAi Publishing 2021-06-25 /pmc/articles/PMC8379357/ /pubmed/34466746 http://dx.doi.org/10.1016/j.bioactmat.2021.05.034 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
Li, Yanzhao
Wang, Yeqin
Xue, Fangchao
Feng, Xuli
Ba, Zhaojing
Chen, Junjie
Zhou, Zhenhua
Wang, Yanhong
Guan, Ge
Yang, Guanyuan
Xi, Ziwei
Tian, Hao
Liu, Yong
Tan, Ju
Li, Gang
Chen, Xiewan
Yang, Mingcan
Chen, Wen
Zhu, Chuhong
Zeng, Wen
Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title_full Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title_fullStr Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title_full_unstemmed Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title_short Programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
title_sort programmable dual responsive system reconstructing nerve interaction with small-diameter tissue-engineered vascular grafts and inhibiting intimal hyperplasia in diabetes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8379357/
https://www.ncbi.nlm.nih.gov/pubmed/34466746
http://dx.doi.org/10.1016/j.bioactmat.2021.05.034
work_keys_str_mv AT liyanzhao programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT wangyeqin programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT xuefangchao programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT fengxuli programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT bazhaojing programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT chenjunjie programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT zhouzhenhua programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT wangyanhong programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT guange programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT yangguanyuan programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT xiziwei programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT tianhao programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT liuyong programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT tanju programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT ligang programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT chenxiewan programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT yangmingcan programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT chenwen programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT zhuchuhong programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes
AT zengwen programmabledualresponsivesystemreconstructingnerveinteractionwithsmalldiametertissueengineeredvasculargraftsandinhibitingintimalhyperplasiaindiabetes