Stok Kathryn S, Besler Bryce A, Steiner Thomas H, Villarreal Escudero Ana V, Zulliger Martin A, Wilke Markus, Atal Kailash, Quintin Aurelie, Koller Bruno, Müller Ralph, Nesic Dobrila
Institute for Biomechanics, ETH Zurich, Zurich, Switzerland.
SCANCO Medical AG, Bruttisellen, Switzerland.
PLoS One. 2016 Jan 25;11(1):e0147564. doi: 10.1371/journal.pone.0147564. eCollection 2016.
This work utilises advances in multi-tissue imaging, and incorporates new metrics which define in situ joint changes and individual tissue changes in osteoarthritis (OA). The aims are to (1) demonstrate a protocol for processing intact animal joints for microCT to visualise relevant joint, bone and cartilage structures for understanding OA in a preclinical rabbit model, and (2) introduce a comprehensive three-dimensional (3D) quantitative morphometric analysis (QMA), including an assessment of reproducibility. Sixteen rabbit joints with and without transection of the anterior cruciate ligament were scanned with microCT and contrast agents, and processed for histology. Semi-quantitative evaluation was performed on matching two-dimensional (2D) histology and microCT images. Subsequently, 3D QMA was performed; including measures of cartilage, subchondral cortical and epiphyseal bone, and novel tibio-femoral joint metrics. Reproducibility of the QMA was tested on seven additional joints. A significant correlation was observed in cartilage thickness from matching histology-microCT pairs. The lateral compartment of operated joints had larger joint space width, thicker femoral cartilage and reduced bone volume, while osteophytes could be detected quantitatively. Measures between the in situ tibia and femur indicated an altered loading scenario. High measurement reproducibility was observed for all new parameters; with ICC ranging from 0.754 to 0.998. In conclusion, this study provides a novel 3D QMA to quantify macro and micro tissue measures in the joint of a rabbit OA model. New metrics were established consisting of: an angle to quantitatively measure osteophytes (σ), an angle to indicate erosion between the lateral and medial femoral condyles (ρ), a vector defining altered angulation (λ, α, β, γ) and a twist angle (τ) measuring instability and tissue degeneration between the femur and tibia, a length measure of joint space width (JSW), and a slope and intercept (m, Χ) of joint contact to demonstrate altered loading with disease progression, as well as traditional bone and cartilage and histo-morphometry measures. We demonstrate correlation of microCT and histology, sensitive discrimination of OA change and robust reproducibility.
本研究利用多组织成像技术的进展,并纳入了新的指标,这些指标可定义骨关节炎(OA)中关节原位变化和个体组织变化。其目的是:(1)展示一种用于处理完整动物关节以进行微型计算机断层扫描(microCT)的方案,以可视化相关关节、骨骼和软骨结构,从而在临床前兔模型中理解骨关节炎;(2)引入全面的三维(3D)定量形态计量分析(QMA),包括对可重复性的评估。对16个有或无前交叉韧带横断的兔关节进行了microCT和造影剂扫描,并进行了组织学处理。对匹配的二维(2D)组织学和microCT图像进行了半定量评估。随后,进行了3D QMA;包括软骨、软骨下皮质骨和骨骺骨的测量,以及新的胫股关节指标。在另外7个关节上测试了QMA的可重复性。在匹配的组织学-microCT对中观察到软骨厚度有显著相关性。手术关节的外侧间室有更大的关节间隙宽度、更厚的股骨软骨和减少的骨体积,同时可以定量检测到骨赘。原位胫骨和股骨之间的测量表明负荷情况发生了改变。所有新参数均具有较高的测量可重复性;组内相关系数(ICC)范围为0.754至0.998。总之,本研究提供了一种新颖的3D QMA,用于量化兔骨关节炎模型关节中的宏观和微观组织测量。建立了新的指标,包括:定量测量骨赘的角度(σ)、指示股骨内外侧髁之间侵蚀的角度(ρ)、定义角度改变的向量(λ、α、β、γ)以及测量股骨和胫骨之间不稳定性和组织退变的扭转角(τ)、关节间隙宽度(JSW)的长度测量,以及关节接触的斜率和截距(m、Χ),以证明随着疾病进展负荷的改变,以及传统的骨和软骨及组织形态测量指标。我们证明了microCT与组织学的相关性、对骨关节炎变化的敏感区分以及强大的可重复性。