Rojas Fredrick P, Batista Michael A, Lindburg C Alexander, Dean Delphine, Grodzinsky Alan J, Ortiz Christine, Han Lin
Departments of Materials Science and Engineering, §Mechanical Engineering, ∥Biological Engineering, and ⊥Electrical Engineering and Computer Science, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139, United States.
Biomacromolecules. 2014 Mar 10;15(3):772-80. doi: 10.1021/bm401611b. Epub 2014 Feb 14.
In this study, we investigated the molecular adhesion between the major constituents of cartilage extracellular matrix, namely, the highly negatively charged proteoglycan aggrecan and the type II/IX/XI fibrillar collagen network, in simulated physiological conditions. Colloidal force spectroscopy was applied to measure the maximum adhesion force and total adhesion energy between aggrecan end-attached spherical tips (end radius R ≈ 2.5 μm) and trypsin-treated cartilage disks with undamaged collagen networks. Studies were carried out in various aqueous solutions to reveal the physical factors that govern aggrecan-collagen adhesion. Increasing both ionic strength and [Ca(2+)] significantly increased adhesion, highlighting the importance of electrostatic repulsion and Ca(2+)-mediated ion bridging effects. In addition, we probed how partial enzymatic degradation of the collagen network, which simulates osteoarthritic conditions, affects the aggrecan-collagen interactions. Interestingly, we found a significant increase in aggrecan-collagen adhesion even when there were no detectable changes at the macro- or microscales. It is hypothesized that the aggrecan-collagen adhesion, together with aggrecan-aggrecan self-adhesion, works synergistically to determine the local molecular deformability and energy dissipation of the cartilage matrix, in turn, affecting its macroscopic tissue properties.
在本研究中,我们在模拟生理条件下,研究了软骨细胞外基质的主要成分之间的分子粘附,即高负电荷的蛋白聚糖聚集蛋白聚糖与II/IX/XI型纤维状胶原网络之间的分子粘附。应用胶体力谱法测量聚集蛋白聚糖末端附着的球形尖端(末端半径R≈2.5μm)与具有未受损胶原网络的胰蛋白酶处理的软骨盘之间的最大粘附力和总粘附能。在各种水溶液中进行研究,以揭示控制聚集蛋白聚糖-胶原粘附的物理因素。增加离子强度和[Ca(2+)]均显著增加粘附力,突出了静电排斥和Ca(2+)-介导的离子桥接效应的重要性。此外,我们探究了模拟骨关节炎条件的胶原网络的部分酶促降解如何影响聚集蛋白聚糖-胶原相互作用。有趣的是,我们发现即使在宏观或微观尺度上没有可检测到的变化时,聚集蛋白聚糖-胶原粘附力也显著增加。据推测,聚集蛋白聚糖-胶原粘附与聚集蛋白聚糖-聚集蛋白聚糖自粘附协同作用,共同决定软骨基质的局部分子变形性和能量耗散,进而影响其宏观组织特性。