» Articles » PMID: 20123137

Cyclically Stretching Developing Tissue in Vivo Enhances Mechanical Strength and Organization of Vascular Grafts

Overview
Journal Acta Biomater
Publisher Elsevier
Date 2010 Feb 4
PMID 20123137
Citations 9
Authors
Affiliations
Soon will be listed here.
Abstract

Tissue-engineered vascular grafts must have qualities that rival native vasculature, specifically the ability to remodel, the expression of functional endothelial components and a dynamic and functional extracellular matrix (ECM) that resists the forces of the arterial circulation. We have developed a device that when inserted into the peritoneal cavity, attracts cells around a tubular scaffold to generate autologous arterial grafts. The device is capable of cyclically stretching (by means of a pulsatile pump) developing tissue to increase the mechanical strength of the graft. Pulsed (n=8) and unpulsed (n=8) devices were implanted for 10 days in Lovenaar sheep (n=8). Pulsation occurred for a period of 5-8 days before harvest. Thick unadhered autologous tissue with cells residing in a collagen ECM was produced in all devices. Collagen organization was greater in the circumferential direction of pulsed tissue. Immunohistochemical labelling revealed the hematopoietic origin of >90% cells and a significantly higher coexpression with vimentin in pulsed tissue. F-actin expression, mechanical failure strength and strain were also significantly increased by pulsation. Moreover, tissue could be grafted as carotid artery patches. This paper shows that unadhered tissue tubes with increased mechanical strength and differentiation in response to pulsation can be produced with every implant after a period of 10 days. However, these tissue tubes require a more fine-tuned exposure to pulsation to be suitable for use as vascular grafts.

Citing Articles

Mechanically reinforced biotubes for arterial replacement and arteriovenous grafting inspired by architectural engineering.

Zhi D, Cheng Q, Midgley A, Zhang Q, Wei T, Li Y Sci Adv. 2022; 8(11):eabl3888.

PMID: 35294246 PMC: 8926343. DOI: 10.1126/sciadv.abl3888.


Combination of inductive effect of lipopolysaccharide and in situ mechanical conditioning for forming an autologous vascular graft in vivo.

Chen C, Guo H, Wang Y, Chang H, Pan C, Tuan-Mu H Sci Rep. 2019; 9(1):10616.

PMID: 31337832 PMC: 6650437. DOI: 10.1038/s41598-019-47054-2.


A short discourse on vascular tissue engineering.

Chang W, Niklason L NPJ Regen Med. 2017; 2.

PMID: 29057097 PMC: 5649630. DOI: 10.1038/s41536-017-0011-6.


Utilizing the Foreign Body Response to Grow Tissue Engineered Blood Vessels in Vivo.

Geelhoed W, Moroni L, Rotmans J J Cardiovasc Transl Res. 2017; 10(2):167-179.

PMID: 28205013 PMC: 5437130. DOI: 10.1007/s12265-017-9731-7.


Development of an in vivo tissue-engineered valved conduit (type S biovalve) using a slitted mold.

Funayama M, Furukoshi M, Moriwaki T, Nakayama Y J Artif Organs. 2015; 18(4):382-6.

PMID: 26233653 DOI: 10.1007/s10047-015-0856-7.