Anatomical Tissue Engineering of the Anterior Cruciate Ligament Entheses

被引:11
作者
Goegele, Clemens [1 ]
Hahn, Judith [2 ]
Schulze-Tanzil, Gundula [1 ]
机构
[1] Paracelsus Med Univ, Inst Anat & Cell Biol, Prof Ernst Nathan Str 1, D-90419 Nurnberg, Germany
[2] Leibniz Inst Polymerforsch Dresden eV IPF, Workgrp Bioengn, Inst Polymers Mat, Dept Mat Engn, Hohe Str 6, D-01069 Dresden, Germany
关键词
ACL; enthesis; ligament; synovioentheseal complex knee; tissue engineering; triphasic and graded scaffold; fibrocartilage; bone-ligament interface; zonality; tidemark; FINITE-ELEMENT-ANALYSIS; TENDON-BONE INTERFACE; GROWTH-FACTOR; REGENERATION; SCAFFOLDS; FIBROCARTILAGE; INSERTION; CELLS; GRAFT; BIOMATERIALS;
D O I
10.3390/ijms24119745
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The firm integration of anterior cruciate ligament (ACL) grafts into bones remains the most demanding challenge in ACL reconstruction, since graft loosening means graft failure. For a functional-tissue-engineered ACL substitute to be realized in future, robust bone attachment sites (entheses) have to be re-established. The latter comprise four tissue compartments (ligament, non-calcified and calcified fibrocartilage, separated by the tidemark, bone) forming a histological and biomechanical gradient at the attachment interface between the ACL and bone. The ACL enthesis is surrounded by the synovium and exposed to the intra-articular micromilieu. This review will picture and explain the peculiarities of these synovioentheseal complexes at the femoral and tibial attachment sites based on published data. Using this, emerging tissue engineering (TE) strategies addressing them will be discussed. Several material composites (e.g., polycaprolactone and silk fibroin) and manufacturing techniques (e.g., three-dimensional-/bio-printing, electrospinning, braiding and embroidering) have been applied to create zonal cell carriers (bi- or triphasic scaffolds) mimicking the ACL enthesis tissue gradients with appropriate topological parameters for zones. Functionalized or bioactive materials (e.g., collagen, tricalcium phosphate, hydroxyapatite and bioactive glass (BG)) or growth factors (e.g., bone morphogenetic proteins [BMP]-2) have been integrated to achieve the zone-dependent differentiation of precursor cells. However, the ACL entheses comprise individual (loading history) asymmetric and polar histoarchitectures. They result from the unique biomechanical microenvironment of overlapping tensile, compressive and shear forces involved in enthesis formation, maturation and maintenance. This review should provide a road map of key parameters to be considered in future in ACL interface TE approaches.
引用
收藏
页数:22
相关论文
共 50 条
  • [1] Current tissue engineering strategies in anterior cruciate ligament reconstruction
    Leong, Natalie L.
    Petrigliano, Frank A.
    McAllister, David R.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (05) : 1614 - 1624
  • [2] Possibilities and limits in tissue engineering of the anterior cruciate ligament
    Ignatius, A.
    Duerselen, L.
    ORTHOPADE, 2009, 38 (11): : 1080 - +
  • [3] Potential of Skin Fibroblasts for Application to Anterior Cruciate Ligament Tissue Engineering
    Tremblay, Pierrot
    Cloutier, Rejean
    Lamontagne, Jean
    Belzil, Anne-Marie
    Larkin, Anne-Marie
    Chouinard, Luc
    Chabaud, Stephane
    Laverty, Sheila
    Lussier, Bertrand
    Goulet, Francine
    CELL TRANSPLANTATION, 2011, 20 (04) : 535 - 542
  • [4] Biomimetic Biphasic Electrospun Scaffold for Anterior Cruciate Ligament Tissue Engineering
    Tang, Ya
    Tian, Jialiang
    Li, Long
    Huang, Lin
    Shen, Quan
    Guo, Shanzhu
    Jiang, Yue
    TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2021, 18 (05) : 819 - 830
  • [5] Regeneration of the anterior cruciate ligament: Current strategies in tissue engineering
    Nau, Thomas
    Teuschl, Andreas
    WORLD JOURNAL OF ORTHOPEDICS, 2015, 6 (01): : 127 - 136
  • [6] Designing a new scaffold for anterior cruciate ligament tissue engineering
    Laurent, C.
    Durville, D.
    Wang, X.
    Ganghoffer, J. F.
    Rahouadj, R.
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2010, 13 : 87 - 88
  • [7] Morphological Characterization of a Novel Scaffold for Anterior Cruciate Ligament Tissue Engineering
    Laurent, Cedric P.
    Ganghoffer, Jean-Francois
    Babin, Jerome
    Six, Jean-Luc
    Wang, Xiong
    Rahouadj, Rachid
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2011, 133 (06):
  • [8] Tissue engineering for anterior cruciate ligament reconstruction: A review of current strategies
    Petrigliano, FA
    McAllister, DR
    Wu, BM
    ARTHROSCOPY-THE JOURNAL OF ARTHROSCOPIC AND RELATED SURGERY, 2006, 22 (04) : 441 - 451
  • [9] Biomimetic Biphasic Electrospun Scaffold for Anterior Cruciate Ligament Tissue Engineering
    Ya Tang
    Jialiang Tian
    Long Li
    Lin Huang
    Quan Shen
    Shanzhu Guo
    Yue Jiang
    Tissue Engineering and Regenerative Medicine, 2021, 18 : 819 - 830
  • [10] Integrating Modern Technologies into Traditional Anterior Cruciate Ligament Tissue Engineering
    Sopilidis, Aris
    Stamatopoulos, Vasileios
    Giannatos, Vasileios
    Taraviras, Georgios
    Panagopoulos, Andreas
    Taraviras, Stavros
    BIOENGINEERING-BASEL, 2025, 12 (01):