Collagen-Based Tissue Engineering Strategies for Vascular Medicine

被引:143
作者
Copes, Francesco [1 ,2 ]
Pien, Nele [1 ,3 ]
Van Vlierberghe, Sandra [3 ]
Boccafoschi, Francesca [1 ,2 ]
Mantovani, Diego [1 ]
机构
[1] Laval Univ, Dept Min Met Mat Engn & Regenerat Med, Canada Res Chair Tier Innovat Surg 1, Lab Biomat & Bioengn,CHU Quebec,Res Ctr, Quebec City, PQ, Canada
[2] Univ Piemonte Orientale, Dept Hlth Sci, Lab Human Anat, Novara, Italy
[3] Univ Ghent, Ctr Macromol Chem, Dept Organ & Macromol Chem, Polymer Chem & Biomat Grp, Ghent, Belgium
关键词
collagen; tissue engineering; cardiovascular; coating; drug delivery system; vascular model; ENDOTHELIAL GROWTH-FACTOR; SILVER-COATED POLYESTER; SMOOTH-MUSCLE-CELLS; BLOOD-VESSEL; IN-VITRO; CROSS-LINKING; CYCLIC STRAIN; STEM-CELLS; COVALENT INCORPORATION; CONTROLLED FABRICATION;
D O I
10.3389/fbioe.2019.00166
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
Cardiovascular diseases (CVDs) account for the 31% of total death per year, making them the first cause of death in the world. Atherosclerosis is at the root of the most life-threatening CVDs. Vascular bypass/replacement surgery is the primary therapy for patients with atherosclerosis. The use of polymeric grafts for this application is still burdened by high-rate failure, mostly caused by thrombosis and neointima hyperplasia at the implantation site. As a solution for these problems, the fast re-establishment of a functional endothelial cell (EC) layer has been proposed, representing a strategy of crucial importance to reduce these adverse outcomes. Implant modifications using molecules and growth factors with the aim of speeding up the re-endothelialization process has been proposed over the last years. Collagen, by virtue of several favorable properties, has been widely studied for its application in vascular graft enrichment, mainly as a coating for vascular graft luminal surface and as a drug delivery system for the release of pro-endothelialization factors. Collagen coatings provide receptor-ligand binding sites for ECs on the graft surface and, at the same time, act as biological sealants, effectively reducing graft porosity. The development of collagen-based drug delivery systems, in which small-molecule and protein-based drugs are immobilized within a collagen scaffold in order to control their release for biomedical applications, has been widely explored. These systems help in protecting the biological activity of the loaded molecules while slowing their diffusion from collagen scaffolds, providing optimal effects on the targeted vascular cells. Moreover, collagen-based vascular tissue engineering substitutes, despite not showing yet optimal mechanical properties for their use in the therapy, have shown a high potential as physiologically relevant models for the study of cardiovascular therapeutic drugs and diseases. In this review, the current state of the art about the use of collagen-based strategies, mainly as a coating material for the functionalization of vascular graft luminal surface, as a drug delivery system for the release of pro-endothelialization factors, and as physiologically relevant in vitro vascular models, and the future trend in this field of research will be presented and discussed.
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页数:15
相关论文
共 186 条
[1]
Abraham GA, 2000, J BIOMED MATER RES, V51, P442, DOI 10.1002/1097-4636(20000905)51:3<442::AID-JBM19>3.0.CO
[2]
2-4
[3]
HETEROLOGOUS COLLAGEN MATRIX SPONGE - HISTOLOGIC AND CLINICAL-RESPONSE TO ITS IMPLANTATION IN 3RD-DEGREE BURN INJURIES [J].
ABRAMO, AC ;
VIOLA, JC .
BRITISH JOURNAL OF PLASTIC SURGERY, 1992, 45 (02) :117-122
[4]
On the Effects of UV-C and pH on the Mechanical Behavior, Molecular Conformation and Cell Viability of Collagen-Based Scaffold for Vascular Tissue Engineering [J].
Achilli, Mateo ;
Lagueux, Jean ;
Mantovani, Diego .
MACROMOLECULAR BIOSCIENCE, 2010, 10 (03) :307-316
[5]
Development of thrombus-resistant and cell compatible crimped polyethylene terephthalate cardiovascular grafts using surface co-immobilized heparin and collagen [J].
Al Meslmani, Bassam ;
Mahmoud, Gihan ;
Strehlow, Boris ;
Mohr, Eva ;
Leichtweiss, Thomas ;
Bakowsky, Udo .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2014, 43 :538-546
[6]
Towards artificial tissue models: past, present, and future of 3D bioprinting [J].
Arslan-Yildiz, Ahu ;
El Assal, Rami ;
Chen, Pu ;
Guven, Sinan ;
Inci, Fatih ;
Demirci, Utkan .
BIOFABRICATION, 2016, 8 (01)
[7]
Cyclic stretch enhances reorientation and differentiation of 3-D culture model of human airway smooth muscle [J].
Asano, Shuichi ;
Ito, Satoru ;
Morosawa, Mika ;
Furuya, Kishio ;
Naruse, Keiji ;
Sokabe, Masahiro ;
Yamaguchi, Etsuro ;
Hasegawa, Yoshinori .
BIOCHEMISTRY AND BIOPHYSICS REPORTS, 2018, 16 :32-38
[8]
In situ revascularization with silver-coated polyester grafts to treat aortic infection: Early and midterm results [J].
Batt, M ;
Magne, JL ;
Alric, P ;
Muzj, A ;
Ruotolo, C ;
Ljungstrom, KG ;
Garcia-Casas, R ;
Simms, M .
JOURNAL OF VASCULAR SURGERY, 2003, 38 (05) :983-989
[9]
Biomaterials in co-culture systems: Towards optimizing tissue integration and cell signaling within scaffolds [J].
Battiston, Kyle G. ;
Cheung, Jane W. C. ;
Jain, Devika ;
Santerre, J. Paul .
BIOMATERIALS, 2014, 35 (15) :4465-4476
[10]
Bella J, 2017, SUBCELL BIOCHEM, V82, P457, DOI 10.1007/978-3-319-49674-0_14