Literature DB >> 30474423

Rapid Self-Assembly of Bioengineered Cardiovascular Bypass Grafts From Scaffold-Stabilized, Tubular Bilevel Cell Sheets.

Daniel von Bornstädt1, Hanjay Wang1, Michael J Paulsen1, Andrew B Goldstone1, Anahita Eskandari1, Akshara Thakore1, Lyndsay Stapleton1,2, Amanda N Steele1,2, Vi N Truong1, Kevin Jaatinen1, Camille Hironaka1, Y Joseph Woo1,2.   

Abstract

BACKGROUND: Cardiovascular bypass grafting is an essential treatment for complex cases of atherosclerotic disease. Because the availability of autologous arterial and venous conduits is patient-limited, self-assembled cell-only grafts have been developed to serve as functional conduits with off-the-shelf availability. The unacceptably long production time required to generate these conduits, however, currently limits their clinical utility. Here, we introduce a novel technique to significantly accelerate the production process of self-assembled engineered vascular conduits.
METHODS: Human aortic smooth muscle cells and skin fibroblasts were used to construct bilevel cell sheets. Cell sheets were wrapped around a 22.5-gauge Angiocath needle to form tubular vessel constructs. A thin, flexible membrane of clinically approved biodegradable tissue glue (Dermabond Advanced) served as a temporary, external scaffold, allowing immediate perfusion and endothelialization of the vessel construct in a bioreactor. Subsequently, the matured vascular conduits were used as femoral artery interposition grafts in rats (n=20). Burst pressure, vasoreactivity, flow dynamics, perfusion, graft patency, and histological structure were assessed.
RESULTS: Compared with engineered vascular conduits formed without external stabilization, glue membrane-stabilized conduits reached maturity in the bioreactor in one-fifth the time. After only 2 weeks of perfusion, the matured conduits exhibited flow dynamics similar to that of control arteries, as well as physiological responses to vasoconstricting and vasodilating drugs. The matured conduits had burst pressures exceeding 500 mm Hg and had sufficient mechanical stability for surgical anastomoses. The patency rate of implanted conduits at 8 weeks was 100%, with flow rate and hind-limb perfusion similar to those of sham controls. Grafts explanted after 8 weeks showed a histological structure resembling that of typical arteries, including intima, media, adventitia, and internal and external elastic membrane layers.
CONCLUSIONS: Our technique reduces the production time of self-assembled, cell sheet-derived engineered vascular conduits to 2 weeks, thereby permitting their use as bypass grafts within the clinical time window for elective cardiovascular surgery. Furthermore, our method uses only clinically approved materials and can be adapted to various cell sources, simplifying the path toward future clinical translation.

Entities:  

Keywords:  bioengineering; bioreactors; coronary artery bypass; tissue adhesive; vascular grafting

Mesh:

Year:  2018        PMID: 30474423      PMCID: PMC6261325          DOI: 10.1161/CIRCULATIONAHA.118.035231

Source DB:  PubMed          Journal:  Circulation        ISSN: 0009-7322            Impact factor:   29.690


  29 in total

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Authors:  Kim A Eagle; Robert A Guyton; Ravin Davidoff; Fred H Edwards; Gordon A Ewy; Timothy J Gardner; James C Hart; Howard C Herrmann; L David Hillis; Adolph M Hutter; Bruce Whitney Lytle; Robert A Marlow; William C Nugent; Thomas A Orszulak
Journal:  Circulation       Date:  2004-10-05       Impact factor: 29.690

2.  Tissue engineering of recellularized small-diameter vascular grafts.

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7.  Implantable tissue-engineered blood vessels from human induced pluripotent stem cells.

Authors:  Liqiong Gui; Biraja C Dash; Jiesi Luo; Lingfeng Qin; Liping Zhao; Kota Yamamoto; Takuya Hashimoto; Hongwei Wu; Alan Dardik; George Tellides; Laura E Niklason; Yibing Qyang
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8.  Mechanical properties of completely autologous human tissue engineered blood vessels compared to human saphenous vein and mammary artery.

Authors:  Gerhardt Konig; Todd N McAllister; Nathalie Dusserre; Sergio A Garrido; Corey Iyican; Alicia Marini; Alex Fiorillo; Hernan Avila; Wojciech Wystrychowski; Krzysztof Zagalski; Marcin Maruszewski; Alyce Linthurst Jones; Lech Cierpka; Luis M de la Fuente; Nicolas L'Heureux
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9.  Spatially oriented, temporally sequential smooth muscle cell-endothelial progenitor cell bi-level cell sheet neovascularizes ischemic myocardium.

Authors:  Yasuhiro Shudo; Jeffrey E Cohen; John W Macarthur; Pavan Atluri; Philip F Hsiao; Elaine C Yang; Alexander S Fairman; Alen Trubelja; Jay Patel; Shigeru Miyagawa; Yoshiki Sawa; Y Joseph Woo
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10.  Cytotoxicity of Cyanoacrylate-Based Tissue Adhesives and Short-Term Preclinical In Vivo Biocompatibility in Abdominal Hernia Repair.

Authors:  Gemma Pascual; Sandra Sotomayor; Marta Rodríguez; Bárbara Pérez-Köhler; Andreé Kühnhardt; Mar Fernández-Gutiérrez; Julio San Román; Juan Manuel Bellón
Journal:  PLoS One       Date:  2016-06-20       Impact factor: 3.240

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7.  Collagen-Supplemented Incubation Rapidly Augments Mechanical Property of Fibroblast Cell Sheets.

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8.  Small Caliber Compliant Vascular Grafts Based on Elastin-Like Recombinamers for in situ Tissue Engineering.

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Review 9.  The Expanding Armamentarium of Innovative Bioengineered Strategies to Augment Cardiovascular Repair and Regeneration.

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10.  Natural Heart Regeneration in a Neonatal Rat Myocardial Infarction Model.

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Journal:  Cells       Date:  2020-01-16       Impact factor: 6.600

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