Advances in Regenerative Orthopedics

被引:68
作者
Evans, Christopher H. [1 ,2 ]
机构
[1] Harvard Univ, Beth Israel Deaconess Med Ctr, Ctr Adv Orthopaed Studies, Sch Med, Boston, MA 02215 USA
[2] AO Fdn, Collaborat Res Ctr, Davos, Switzerland
基金
美国国家卫生研究院;
关键词
MESENCHYMAL STEM-CELLS; ARTICULAR-CARTILAGE DEFECTS; RAAV-MEDIATED OVEREXPRESSION; REGIONAL GENE-THERAPY; IN-VIVO; PROGENITOR CELLS; TRANSFORMING GROWTH-FACTOR-BETA-1; EXTRACELLULAR-MATRIX; BONE REGENERATION; ANIMAL-MODELS;
D O I
10.1016/j.mayocp.2013.04.027
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Orthopedic injuries are common and a source of much misery and economic stress. Several relevant tissues, such as cartilage, meniscus, and intra-articular ligaments, do not heal. And even bone, which normally regenerates spontaneously, can fail to mend. The regeneration of orthopedic tissues requires 4 key components: cells, morphogenetic signals, scaffolds, and an appropriate mechanical environment. Although differentiated cells from the tissue in question can be used, most cellular research focuses on the use of mesenchymal stem cells. These can be retrieved from many different tissues, and one unresolved question is the degree to which the origin of the cells matters. Embryonic and induced pluripotent stem cells are also under investigation. Morphogenetic signals are most frequently supplied by individual recombinant growth factors or native mixtures provided by, for example, platelet-rich plasma; mesenchymal stem cells are also a rich source of trophic factors. Obstacles to the sustained delivery of individual growth factors can be addressed by gene transfer or smart scaffolds, but we still lack detailed, necessary information on which delivery profiles are needed. Scaffolds may be based on natural products, synthetic materials, or devitalized extracellular matrix. Strategies to combine these components to regenerate tissue can follow traditional tissue engineering practices, but these are costly, cumbersome, and not well suited to treating large numbers of individuals. More expeditious approaches make full use of intrinsic biological processes in vivo to avoid the need for ex vivo expansion of autologous cells and multiple procedures. Clinical translation remains a bottleneck. (C) 2013 Mayo Foundation for Medical Education and Research
引用
收藏
页码:1323 / 1339
页数:17
相关论文
共 153 条
  • [1] Immune evasion by neocartilage-derived chondrocytes: Implications for biologic repair of joint articular cartilage
    Adkisson, H. D.
    Milliman, C.
    Zhang, X.
    Mauch, K.
    Maziarz, R. T.
    Streeter, P. R.
    [J]. STEM CELL RESEARCH, 2010, 4 (01) : 57 - 68
  • [2] Conversion of Human Bone Marrow-Derived Mesenchymal Stem Cells into Tendon Progenitor Cells by Ectopic Expression of Scleraxis
    Alberton, Paolo
    Popov, Cvetan
    Praegert, Markus
    Kohler, Julia
    Shukunami, Chisa
    Schieker, Matthias
    Docheva, Denitsa
    [J]. STEM CELLS AND DEVELOPMENT, 2012, 21 (06) : 846 - 858
  • [3] Are animal models useful for studying human disc disorders/degeneration?
    Alini, Mauro
    Eisenstein, Stephen M.
    Ito, Keita
    Little, Christopher
    Kettler, A. Annette
    Masuda, Koichi
    Melrose, James
    Ralphs, Jim
    Stokes, Ian
    Wilke, Hans Joachim
    [J]. EUROPEAN SPINE JOURNAL, 2008, 17 (01) : 2 - 19
  • [4] Biologic Repair and Regeneration of the Intervertebral Disk
    An, Howard S.
    Masuda, Koichi
    Cs-Szabo, Gabriella
    Zhang, Yejia
    Chee, Ana
    Andersson, Gunnar B. J.
    Im, Hee-Jeong
    Thonar, Eugene J-M. A.
    [J]. JOURNAL OF THE AMERICAN ACADEMY OF ORTHOPAEDIC SURGEONS, 2011, 19 (07) : 450 - 451
  • [5] Osteoinductive Small Molecules: Growth Factor Alternatives for Bone Tissue Engineering
    Aravamudhan, Aja
    Ramos, Daisy M.
    Nip, Jonathan
    Subramanian, Aditi
    James, Roshan
    Harmon, Matthew D.
    Yu, Xiaojun
    Kumbar, Sangamesh G.
    [J]. CURRENT PHARMACEUTICAL DESIGN, 2013, 19 (19) : 3420 - 3428
  • [6] Extracellular matrix as a biological scaffold material: Structure and function
    Badylak, Stephen F.
    Freytes, Donald O.
    Gilbert, Thomas W.
    [J]. ACTA BIOMATERIALIA, 2009, 5 (01) : 1 - 13
  • [7] A bioresponsive hydrogel tuned to chondrogenesis of human mesenchymal stem cells
    Bahney, Chelsea S.
    Hsu, Chih-Wei
    Yoo, Jung U.
    West, Jennifer L.
    Johnstone, Brian
    [J]. FASEB JOURNAL, 2011, 25 (05) : 1486 - 1496
  • [8] OSTEOINDUCTIVE BIOMATERIALS: CURRENT KNOWLEDGE OF PROPERTIES, EXPERIMENTAL MODELS AND BIOLOGICAL MECHANISMS
    Barradas, Ana M. C.
    Yuan, Huipin
    van Blitterswijk, Clemens A.
    Habibovic, Pamela
    [J]. EUROPEAN CELLS & MATERIALS, 2011, 21 : 407 - 429
  • [9] Direct percutaneous gene delivery to enhance healing of segmental bone defects
    Betz, OB
    Betz, VM
    Nazarian, A
    Pilapil, CG
    Vrahas, MS
    Bouxsein, ML
    Gerstenfeld, LC
    Einhorn, TA
    Evans, CH
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 2006, 88A (02) : 355 - 365
  • [10] Identification of tendon stem/progenitor cells and the role of the extracellular matrix in their niche
    Bi, Yanming
    Ehirchiou, Driss
    Kilts, Tina M.
    Inkson, Colette A.
    Embree, Mildred C.
    Sonoyama, Wataru
    Li, Li
    Leet, Arabella I.
    Seo, Byoung-Moo
    Zhang, Li
    Shi, Songtao
    Young, Marian F.
    [J]. NATURE MEDICINE, 2007, 13 (10) : 1219 - 1227