In Situ Measurement of Transport between Subchondral Bone and Articular Cartilage

被引:168
|
作者
Pan, Jun [1 ,2 ]
Zhou, Xiaozhou [1 ]
Li, Wen [3 ]
Novotny, John E. [1 ]
Doty, Stephen B. [4 ]
Wang, Liyun [1 ,3 ]
机构
[1] Univ Delaware, Dept Mech Engn, Newark, DE 19716 USA
[2] Chongqing Univ, Coll Bioengn, Chongqing 400044, Peoples R China
[3] Univ Delaware, Biomech & Movement Sci Program, Newark, DE 19716 USA
[4] Hosp Special Surg, New York, NY 10021 USA
基金
芬兰科学院;
关键词
photobleaching; calcified cartilage; mineralization; diffusion; osteoarthritis; CALCIFIED CARTILAGE; SOLUTE TRANSPORT; OSTEOARTHRITIS; DIFFUSION; GROWTH; PLATE; MICROCRACKS; OSTEOBLASTS; INVIVO; HEADS;
D O I
10.1002/jor.20883
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
Subchondral bone and articular cartilage play complementary roles in load bearing of the joints. Although the biomechanical coupling between subchondral bone and articular cartilage is well established, it remains unclear whether direct biochemical communication exists between them. Previously, the calcified cartilage between these two compartments was generally believed to be impermeable to transport of solutes and gases. However, recent studies found that small molecules could penetrate into the calcified cartilage from the subchondral bone. To quantify the real-time solute transport across the calcified cartilage, we developed a novel imaging method based on fluorescence loss induced by photobleaching (FLIP). Diffusivity of sodium fluorescein (376 Da) was quantified to be 0.07 +/- 0.03 and 0.26 +/- 0.22 mu m(2)/s between subchondral bone and calcified cartilage and within the calcified cartilage in the murine distal femur, respectively. Electron microscopy revealed that calcified cartilage matrix contained nonmineralized regions (similar to 22% volume fraction) that are either large patches (53 +/- 18 nm) among the mineral deposits or numerous small regions (4.5 +/- 0.8 nm) within the mineral deposits, which may serve as transport pathways. These results suggest that there exists a possible direct signaling between subchondral bone and articular cartilage, and they form a functional unit with both mechanical and biochemical interactions, which may play a role in the maintenance and degeneration of the joint. (C) 2009 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 27:1347-1352, 2009
引用
收藏
页码:1347 / 1352
页数:6
相关论文
共 50 条
  • [41] Chondrocyte survival in articular cartilage THE INFLUENCE OF SUBCHONDRAL BONE IN A BOVINE MODEL
    Amin, A. K.
    Huntley, J. S.
    Simpson, A. H. R. W.
    Hall, A. C.
    JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 2009, 91B (05): : 691 - 699
  • [42] HISTOLOGICAL GRADING OF ARTICULAR CARTILAGE AND SUBCHONDRAL BONE IN POSTMENOPAUSAL WOMEN WITH OSTEOARTHRITIS
    Ashukina, N.
    Maltseva, V.
    Danischuk, Z.
    Filipenko, V.
    OSTEOPOROSIS INTERNATIONAL, 2020, 31 (SUPPL 1) : S181 - S181
  • [43] THE EFFECTS OF ARTICULAR NERVE TRANSECTION ON THE ARTICULAR-CARTILAGE AND SUBCHONDRAL BONE OF RAT KNEE JOINTS
    WILLIAMS, JM
    OCONNOR, BL
    ANATOMICAL RECORD, 1981, 199 (03): : A277 - A278
  • [44] Disentangling the molecular interplays between subchondral bone and articular cartilage in estrogen deficiency-induced osteoarthritis
    Castaneda, Santos
    Vicente-Rabaneda, Esther F.
    OSTEOARTHRITIS AND CARTILAGE, 2023, 31 (01) : 6 - 8
  • [45] CARTILAGE DAMAGE INVOLVING EXTRUSION OF MINERALISABLE MATRIX FROM THE ARTICULAR CALCIFIED CARTILAGE AND SUBCHONDRAL BONE
    Boyde, A.
    Riggs, C. M.
    Bushby, A. J.
    McDermott, B.
    Pinchbeck, G. L.
    Clegg, P. D.
    EUROPEAN CELLS & MATERIALS, 2011, 21 : 470 - 478
  • [46] Articular Cartilage Degradation and Aberrant Subchondral Bone Remodeling in Patients with Osteoarthritis and Osteoporosis
    Chu, Linyang
    Liu, Xuqiang
    He, Zihao
    Han, Xuequan
    Yan, Mengning
    Qu, Xinhua
    Li, Xiaofeng
    Yu, Zhifeng
    JOURNAL OF BONE AND MINERAL RESEARCH, 2020, 35 (03) : 505 - 515
  • [47] An integral biochemical analysis of the main constituents of articular cartilage, subchondral and trabecular bone
    van der Harst, MR
    Brama, PAJ
    van de Lest, CHA
    Kiers, GH
    DeGroot, J
    van Weeren, PR
    OSTEOARTHRITIS AND CARTILAGE, 2004, 12 (09) : 752 - 761
  • [48] Early Changes of Articular Cartilage and Subchondral Bone in The DMM Mouse Model of Osteoarthritis
    Hang Fang
    Lisi Huang
    Ian Welch
    Chris Norley
    David W. Holdsworth
    Frank Beier
    Daozhang Cai
    Scientific Reports, 8
  • [49] Shock absorbing ability of articular cartilage and subchondral bone under impact compression
    Malekipour, Fatemeh
    Whitton, Chris
    Oetomo, Denny
    Lee, Peter Vee Sin
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2013, 26 : 127 - 135
  • [50] Subchondral bone in osteoarthritis: a biologic link with articular cartilage leading to abnormal remodeling
    Lajeunesse, D
    Reboul, P
    CURRENT OPINION IN RHEUMATOLOGY, 2003, 15 (05) : 628 - 633