Tissue Engineering and Regenerative Strategies to Replicate Biocomplexity of Vascular Elastic Matrix Assembly

被引:0
|
作者
Bashur, Chris A. [1 ]
Venkataraman, Lavanya [1 ,2 ]
Ramamurthi, Anand [1 ,2 ]
机构
[1] Cleveland Clin, Dept Biomed Engn, Cleveland, OH 44195 USA
[2] Clemson Univ, Dept Bioengn, Clemson, SC USA
关键词
SMOOTH-MUSCLE-CELLS; CROSS-LINKED ELASTIN; TRANSFORMING GROWTH FACTOR-BETA(1); EXTRACELLULAR-MATRIX; BLOOD-VESSEL; LYSYL OXIDASE; IN-VITRO; MECHANICAL STRETCH; HYALURONAN OLIGOMERS; PERIPHERAL-BLOOD;
D O I
10.1089/ten.teb.2011.0521
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Cardiovascular tissues exhibit architecturally complex extracellular matrices, of which the elastic matrix forms a major component. The elastic matrix critically maintains native structural configurations of vascular tissues, determines their ability to recoil after stretch, and regulates cell signaling pathways involved in morphogenesis, injury response, and inflammation via biomechanical transduction. The ability to tissue engineer vascular replacements that incorporate elastic matrix superstructures unique to cardiac and vascular tissues is thus important to maintaining vascular homeostasis. However, the vascular elastic matrix is particularly difficult to tissue engineer due to the inherently poor ability of adult vascular cells to synthesize elastin precursors and organize them into mature structures in a manner that replicates the biocomplexity of elastic matrix assembly during development. This review discusses current tissue engineering materials (e.g., growth factors and scaffolds) and methods (e.g., dynamic stretch and contact guidance) used to promote cellular synthesis and assembly of elastic matrix superstructures, and the limitations of these approaches when applied to smooth muscle cells, the primary elastin-generating cell type in vascular tissues. The potential application of these methods for in situ regeneration of disrupted elastic matrix at sites of proteolytic vascular disease (e.g., abdominal aortic aneurysms) is also discussed. Finally, the review describes the potential utility of alternative cell types to elastic tissue engineering and regenerative matrix repair. Future progress in the field is contingent on developing a thorough understanding of developmental elastogenesis and then mimicking the spatiotemporal changes in the cellular microenvironment that occur during that phase. This will enable us to tissue engineer clinically applicable elastic vascular tissue replacements and to develop elastogenic therapies to restore homeostasis in de-elasticized vessels.
引用
收藏
页码:203 / 217
页数:15
相关论文
共 50 条
  • [41] Collagen, fibrin and collagen-fibrin mixtures as matrix materials for vascular tissue engineering
    Stegemann, JP
    Cummings, CL
    Gawlitta, D
    Nerem, RM
    SECOND JOINT EMBS-BMES CONFERENCE 2002, VOLS 1-3, CONFERENCE PROCEEDINGS: BIOENGINEERING - INTEGRATIVE METHODOLOGIES, NEW TECHNOLOGIES, 2002, : 817 - 818
  • [42] Hybrid cardiovascular sourced extracellular matrix scaffolds as possible platforms for vascular tissue engineering
    Reid, James A.
    Callanan, Anthony
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2020, 108 (03) : 910 - 924
  • [43] Human Chorionic Membrane-derived Tunable Hydrogels for Vascular Tissue Engineering Strategies
    Martins, Elisa A. G.
    Deus, Ines A.
    Gomes, Maria C.
    Silva, Ana S.
    Mano, Joao F.
    Custodio, Catarina A.
    ADVANCED HEALTHCARE MATERIALS, 2025, 14 (01)
  • [44] The application of composite scaffold materials based on decellularized vascular matrix in tissue engineering: a review
    Jingying Li
    Xiao Chen
    Miaoling Hu
    Jian Wei
    Minhai Nie
    Jiana Chen
    Xuqian Liu
    BioMedical Engineering OnLine, 22
  • [45] Effect of visco-elastic silk-chitosan microcomposite scaffolds on matrix deposition and biomechanical functionality for cartilage tissue engineering
    Chameettachal, Shibu
    Murab, Sumit
    Vaid, Radhika
    Midha, Swati
    Ghosh, Sourabh
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2017, 11 (04) : 1212 - 1229
  • [46] Emerging Strategies for Optimizing Cell-Derived Decellularized Extracellular Matrix Scaffolds in Tissue Engineering
    Chen, Huan
    Zhang, Siyi
    Fu, Yao
    ADVANCED ENGINEERING MATERIALS, 2024, 26 (09)
  • [47] Hydrogel-complexed small-diameter vascular graft loaded with tissue-specific vascular extracellular matrix components used for tissue engineering
    Tu, Chengzhao
    Zhang, Yuanguo
    Xiao, Yonghao
    Xing, Yuehao
    Jiao, Yuhao
    Geng, Xue
    Zhang, Aiying
    Ye, Lin
    Gu, Yongquan
    Feng, Zengguo
    BIOMATERIALS ADVANCES, 2022, 142
  • [48] Vascular extracellular matrix and fibroblasts-coculture directed differentiation of human mesenchymal stem cells toward smooth muscle-like cells for vascular tissue engineering
    Li, Na
    Sanyour, Hanna
    Remund, Tyler
    Kelly, Patrick
    Hong, Zhongkui
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2018, 93 : 61 - 69
  • [49] Multistructured vascular patches constructed via layer-by-layer self-assembly of heparin and chitosan for vascular tissue engineering applications
    Zhang, Jun
    Wang, Dawei
    Jiang, Xuefeng
    He, Lei
    Fu, Lei
    Zhao, Yue
    Wang, Yutong
    Mo, Hong
    Shen, Jian
    CHEMICAL ENGINEERING JOURNAL, 2019, 370 : 1057 - 1067
  • [50] Adipose-derived perivascular mesenchymal stromal/stem cells promote functional vascular tissue engineering for cardiac regenerative purposes
    Morrissette-McAlmon, Justin
    Blazeski, Adriana
    Somers, Sarah
    Kostecki, Geran
    Tung, Leslie
    Grayson, Warren L.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2018, 12 (02) : E962 - E972