IRCCS Istituto Ortopedico Rizzoli, NanoBiotechnology Laboratory (NaBi), Via di Barbiano 10/2, 40136, Bologna, Italy.
IRCCS Istituto Ortopedico Rizzoli, Laboratorio di Biomeccanica e Innovazione Tecnologica, Via di Barbiano 10/2, 40136, Bologna, Italy.
J Mech Behav Biomed Mater. 2019 Aug;96:79-87. doi: 10.1016/j.jmbbm.2019.04.042. Epub 2019 Apr 23.
Osteochondral scaffolds are emerging as a promising alternative for articular cartilage regeneration, although with still controversial results. In particular, the restoration of the osteochondral interface remains an open challenge. The current available investigative procedures are not optimal to quantify the properties of this region, neither to evaluate the quality of the regenerated tissue with respect to the physiological one. This study investigates an advanced procedure able to quantitatively evaluate the mechanical gradient between stiff and compliant tissues, such as in the osteochondral region where the interface between hyaline and calcified cartilage (tidemark) plays an integral role in transferring articular loads from the compliant articular surface to the stiffer underlying bone. A series of nanoindentation line scans was performed along the tidemark - starting from hyaline and expanding across calcified cartilage - on histological sections derived from sheep osteochondral tissue regenerated by a three-layered biomimetic scaffold, as well as to the adjacent healthy tissue for comparative purposes. After an accurate assessment of the indentation parameters, a sigmoid curve-fit function was applied on the reduced modulus profiles to extract gap, width and regularity of the mechanical transition. The designed procedure succeeded in quantitatively assessing the transition between compliant and stiff regions, limiting experimental issues that generally affect the reliability of the indentation mechanical data, such as apex-blunt indenter tip effect, surface roughness, and influence of the substrate. Among the evaluated parameters, the mechanical gap highlighted the main difference between native and regenerated tissues. Thanks to the information retrievable through this procedure, this load transmission area can be further investigated, providing data to tailor osteochondral engineered tissues in the future.
骨软骨支架作为一种有前途的关节软骨再生替代物正在出现,尽管其结果仍存在争议。特别是,骨软骨界面的修复仍然是一个悬而未决的挑战。目前可用的研究程序并不理想,无法定量评估该区域的特性,也无法评估再生组织相对于生理组织的质量。本研究探讨了一种先进的程序,能够定量评估刚性和顺应性组织之间的机械梯度,例如在骨软骨区域,透明软骨和钙化软骨之间的界面(钙化前沿)在将关节负荷从顺应性关节表面传递到较硬的下方骨骼方面起着重要作用。在对压痕参数进行精确评估后,将 sigmoid 曲线拟合函数应用于降低的模量分布,以提取机械过渡的间隙、宽度和规则性。设计的程序成功地对顺应性和刚性区域之间的过渡进行了定量评估,限制了通常会影响压痕力学数据可靠性的实验问题,例如尖端钝的压头尖端效应、表面粗糙度以及基底的影响。在所评估的参数中,机械间隙突出显示了天然组织和再生组织之间的主要区别。通过该程序可获得的信息,可以进一步研究这个负荷传递区域,为未来定制骨软骨工程组织提供数据。