Department of Orthopaedic Surgery, Rutgers Biomedical and Health Sciences - Robert Wood Johnson Medical School, New Brunswick, New Jersey, USA.
Department of Biomedical Engineering, Rutgers, The State University of New Jersey, Piscataway, New Jersey, USA.
J Biomed Mater Res B Appl Biomater. 2019 Nov;107(8):2457-2465. doi: 10.1002/jbm.b.34336. Epub 2019 Feb 18.
The menisci transmit load by increasing the contact area and decreasing peak contact stresses on the articular surfaces. Meniscal lesions are among the most common orthopedic injuries, and resulting meniscectomies are associated with adverse polycaprolactone contact mechanics changes and, ultimately, an increased likelihood of osteoarthritis. Meniscus scaffolds were fabricated by 3D-printing a network of circumferential and radial filaments of resorbable polymer (poly(desaminotyrosyl-tyrosine dodecyl ester dodecanoate)) and infused with collagen-hyaluronan. The scaffold demonstrated an instantaneous compressive modulus (1.66 ± 0.44 MPa) comparable to native meniscus (1.52 ± 0.59 MPa). The scaffold aggregate modulus (1.33 ± 0.51 MPa) was within 2% of the native value (1.31 ± 0.36 MPa). In tension, the scaffold displayed a comparable stiffness to native tissue (127.6-97.1 N/mm) and an ultimate load of 33% of the native value. Suture pull-out load of scaffolds (83.1 ± 10.0 N) was within 10% of native values (91.5 ± 15.4 N). Contact stress analysis demonstrated the scaffold reduced peak contact stress by 60-67% and increased contact area by 38%, relative to partial meniscectomy. This is the first meniscal scaffold to match both the axial compressive properties and the circumferential tensile stiffness of the native meniscus. The improvement of joint contact mechanics, relative to partial meniscectomy alone, motivates further investigation using a large animal model. © 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B:2457-2465, 2019.
半月板通过增加接触面积和降低关节表面的峰值接触应力来传递负荷。半月板损伤是最常见的骨科损伤之一,由此导致的半月板切除术与不良的聚己内酯接触力学变化有关,最终增加了骨关节炎的发生几率。通过 3D 打印可吸收聚合物(聚(去氨基酪氨酸酪氨酸十二烷基酯十二烷酸酯))的环形和放射状细丝网络,并注入胶原蛋白-透明质酸来制造半月板支架。支架的瞬时压缩模量(1.66±0.44MPa)与天然半月板(1.52±0.59MPa)相当。支架的聚合模量(1.33±0.51MPa)在天然值的 2%以内(1.31±0.36MPa)。在拉伸时,支架的刚度与天然组织相当(127.6-97.1N/mm),极限载荷为天然组织的 33%。支架的缝合线拔出载荷(83.1±10.0N)在天然值的 10%以内(91.5±15.4N)。与部分半月板切除术相比,支架降低了 60-67%的峰值接触应力,增加了 38%的接触面积。这是第一个在轴向压缩性能和天然半月板的环向拉伸刚度方面都与天然半月板相匹配的半月板支架。与单独部分半月板切除术相比,关节接触力学的改善促使我们进一步使用大动物模型进行研究。©2019Wiley Periodicals,Inc. J Biomed Mater Res Part B:Appl Biomater 107B:2457-2465,2019。