关节软骨中胶原超微结构的地带性特征及其对机械载荷的响应。

IF 9.6 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-03-15 DOI:10.1016/j.actbio.2025.01.047
Jingrui Hu , Keke Zheng , Benjamin E. Sherlock , Jingxiao Zhong , Jessica Mansfield , Ellen Green , Andrew D. Toms , C. Peter Winlove , Junning Chen
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引用次数: 0

摘要

关节软骨的生物力学特性源于复杂的生物环境,包括细胞外基质(ECM)内分层组织的胶原网络,这些胶原网络与富含蛋白聚糖的间质液相互作用。该网络的特点是不同区域的纤维组织与深度相关。了解胶原原纤维如何应对外部负荷是阐明病变背后机制和治疗退行性疾病(如骨关节炎)的关键。本研究采用偏振分辨二次谐波(pSHG)显微镜,在近体条件下量化胶原原纤维的超微结构组织及其沿骨软骨外植体深度的空间梯度。通过结合原位加载,我们通过量化胶原原纤维的主要取向和排列程度的变化来检查胶原原纤维的反应。沿外植体纵向平面(0.5 × 2mm)以高分辨率(1µm)捕捉胶原组织的空间梯度和异质性。区域特异性超微结构特征被量化,以帮助确定区域边界,揭示出总体厚度不同的一致区域比例。压缩作用下,过渡区胶原原纤维的重组最为显著。它最初通过原纤维的重新定向允许大变形,然后收紧原纤维排列以防止过度变形,这表明响应不断增加的应变水平的动态适应机制。我们的研究结果提供了全面的、区域特异性的软骨超微结构和微观力学基线,这对于研究退行性疾病的发生和进展、设定治疗干预目标以及指导软骨修复和再生至关重要。意义声明:在近体条件下,沿着骨软骨外植体纵面(500 × 2000µm)的全深度,以高分辨率(1µm)对胶原超微结构组织的空间梯度和异质性进行了前所未有的量化。基于超微结构特征提出了新的解剖标志来确定分区边界,并在不同总厚度的外植体中发现了一致的分区比例。证明胶原原纤维最初的反应是在低应变水平下重新定位自己,在软骨变形中发挥重要作用,特别是在过渡区。在较高的应变水平下,更多的胶原原纤维改变了它们的排列,这表明在不同应变水平下,反应机制发生了动态变化。
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Zonal Characteristics of Collagen Ultrastructure and Responses to Mechanical Loading in Articular Cartilage
The biomechanical properties of articular cartilage arise from a complex bioenvironment comprising hierarchically organised collagen networks within the extracellular matrix (ECM) that interact with the proteoglycan-rich interstitial fluid. This network features a depth-dependent fibril organisation across different zones. Understanding how collagen fibrils respond to external loading is key to elucidating the mechanisms behind lesion formation and managing degenerative conditions like osteoarthritis. This study employs polarisation-resolved second harmonic generation (pSHG) microscopy to quantify the ultrastructural organisation of collagen fibrils and their spatial gradient along the depth of bone-cartilage explants under a close-to-in vivo condition. By combining with in-situ loading, we examined the responses of collagen fibrils by quantifying changes in their principal orientation and degree of alignment. The spatial gradient and heterogeneity of collagen organisation were captured at high resolution (1 μm) along the longitudinal plane of explants (0.5 mm by 2 mm). Zone-specific ultrastructural characteristics were quantified to aid in defining zonal borders, revealing consistent zonal proportions with varying overall thicknesses. Under compression, the transitional zone exhibited the most significant re-organisation of collagen fibrils. It initially allowed large deformation through the re-orientation of fibrils, which then tightened fibril alignment to prevent excessive deformation, indicating a dynamic adaptation mechanism in response to increasing strain levels. Our results provide comprehensive, zone-specific baselines of cartilage ultrastructure and micromechanics, crucial for investigating the onset and progression of degenerative conditions, setting therapeutic intervention targets, and guiding cartilage repair and regeneration efforts.

Statement of significance

Achieved unprecedented quantification of the spatial gradient and heterogeneity of collagen ultrastructural organisation at a high resolution (1 μm) along the full depth of the longitudinal plane of osteochondral explants (0.5 mm by 2 mm) under close-to-in vivo condition.
Suggested new anatomical landmarks based on ultrastructural features for determining zonal borders and found consistent zonal proportions in explants with different overall thicknesses.
Demonstrated that collagen fibrils initially respond by reorienting themselves at low strain levels, playing a significant role in cartilage deformation, particularly within the transitional zone. At higher strain levels, more collagen fibrils re-aligned, indicating a dynamic shift in the response mechanism at varying strain levels.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
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