Drug delivery in aortic valve tissue engineering

被引:21
|
作者
Jana, Soumen [1 ]
Simari, Robert D. [2 ]
Spoon, Daniel B. [1 ,2 ]
Lerman, Amir [1 ]
机构
[1] Mayo Clin, Div Cardiovasc Dis, Rochester, MN 55905 USA
[2] Univ Kansas, Sch Med, Kansas City, KS 66160 USA
关键词
Drug delivery; Fiber; Heart valve; Hydrogel; Scaffold; Tissue engineering; ENDOTHELIAL GROWTH-FACTOR; MESENCHYMAL STEM-CELLS; BONE MORPHOGENETIC PROTEIN-2; VALVULAR INTERSTITIAL CELL; HEART-VALVE; IN-VITRO; PROGENITOR CELLS; CONTROLLED-RELEASE; GENE DELIVERY; TRANSFORMING GROWTH-FACTOR-BETA-1;
D O I
10.1016/j.jconrel.2014.10.009
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Over the last 50 years medicine and technology have progressed to the point where it has become commonplace to safely replace damaged or diseased heart valves with mechanical and biological prostheses. Despite the advancements in technology current valve substitutes continue to have significant limitations with regards to thrombogenicity, durability, and inability to grow or remodel. In an attempt to overcome the limitations of currently available valve prosthesis, heart valve tissue engineering has emerged as a promising technique to produce biological valve substitutes. Currently, the field of tissue engineering is focused on delivering complex matrices which include scaffolds and cells separately or together to the damaged site. Additional functional enhancement of the matrices by exposing encoded biological signals to their residing cells in a controlled manner has the potential to augment the tissue engineering approach. This review provides an overview of the delivery of biological reagents to guide and regulate heart valve tissue engineering. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:307 / 323
页数:17
相关论文
共 50 条
  • [41] Electrospun fibers in regenerative tissue engineering and drug delivery
    Nagarajan, Sakthivel
    Pochat-Bohatier, Celine
    Balme, Sebastien
    Miele, Philippe
    Kalkura, S. Narayana
    Bechelany, Mikhael
    PURE AND APPLIED CHEMISTRY, 2017, 89 (12) : 1799 - 1808
  • [42] Polymers as biomaterials for tissue engineering and controlled drug delivery
    Nair, Lakshmi S.
    Laurencin, Cato T.
    TISSUE ENGINEERING I: SCAFFOLD SYSTEMS FOR TISSUE ENGINEERING, 2006, 102 : 47 - 90
  • [43] Chitosan and Chitosan Derivatives in Drug Delivery and Tissue Engineering
    Riva, Raphael
    Ragelle, Heloise
    des Rieux, Anne
    Duhem, Nicolas
    Jerome, Christine
    Preat, Veronique
    CHITOSAN FOR BIOMATERIALS II, 2011, 244 : 19 - 44
  • [44] Electrospun nanofibrous materials for tissue engineering and drug delivery
    Cui, Wenguo
    Zhou, Yue
    Chang, Jiang
    SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2010, 11 (01)
  • [45] Injectable matrices and scaffolds for drug delivery in tissue engineering
    Kretlow, James D.
    Klouda, Leda
    Mikos, Antonios G.
    ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (4-5) : 263 - 273
  • [46] Model of dissolution in the framework of tissue engineering and drug delivery
    J. A. Sanz-Herrera
    L. Soria
    E. Reina-Romo
    Y. Torres
    A. R. Boccaccini
    Biomechanics and Modeling in Mechanobiology, 2018, 17 : 1331 - 1341
  • [47] Combinatorial development of biomaterials for tissue engineering and drug delivery
    Anderson, Daniel G.
    CANCER RESEARCH, 2011, 71
  • [48] Advancements and Utilizations of Scaffolds in Tissue Engineering and Drug Delivery
    Chauhan, Akash
    Alam, Md. Aftab
    Kaur, Awaneet
    Malviya, Rishabha
    CURRENT DRUG TARGETS, 2023, 24 (01) : 13 - 40
  • [49] Polyhydroxyalkanoate (PHA): applications in drug delivery and tissue engineering
    Elmowafy, Enas
    Abdal-Hay, Abdalla
    Skouras, Athanasios
    Tiboni, Mattia
    Casettari, Luca
    Guarino, Vincenzo
    EXPERT REVIEW OF MEDICAL DEVICES, 2019, 16 (06) : 467 - 482
  • [50] Model of dissolution in the framework of tissue engineering and drug delivery
    Sanz-Herrera, J. A.
    Soria, L.
    Reina-Romo, E.
    Torres, Y.
    Boccaccini, A. R.
    BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2018, 17 (05) : 1331 - 1341