Thirumaran Arun, Doulgkeroglou Meletios-Nikolaos, Sankar Magesh, Easley Jeremiah T, Gadomski Ben, Poudel Anup, Biggs Manus
Centre for Research in Medical Devices (CÚRAM), University of Galway, Ireland.
Department of Mechanical Engineering, Colorado State University, USA.
Bioact Mater. 2024 Jul 22;41:207-220. doi: 10.1016/j.bioactmat.2024.06.030. eCollection 2024 Nov.
Rapid and efficient tendon fixation to a bone following trauma or in response to degenerative processes can be facilitated using a tendon anchoring device. Osteomimetic biomaterials, and in particular, bio-resorbable polymer composites designed to match the mineral phase content of native bone, have been shown to exhibit osteoinductive and osteoconductive properties and have been used in bone fixation for the past 2 decades. In this study, a resorbable, bioactive, and mechanically robust citrate-based composite formulated from poly(octamethylene citrate) (POC) and hydroxyapatite (HA) (POC-HA) was investigated as a potential tendon-fixation biomaterial. In vitro analysis with human Mesenchymal Stem Cells (hMSCs) indicated that POC-HA composite materials supported cell adhesion, growth, and proliferation and increased calcium deposition, alkaline phosphatase production, the expression of osteogenic specific genes, and activation of canonical pathways leading to osteoinduction and osteoconduction. Further evaluation of a POC-HA tendon fixation device in a sheep metaphyseal model indicates the regenerative and remodeling potential of this citrate-based composite material. Together, this study presents a comprehensive and analysis of the functional response to a citrate-derived composite tendon anchor and indicates that citrate-based HA composites offer improved mechanical and osteogenic properties relative to commonly used resorbable tendon anchor devices formulated from poly(L--D, l-lactic acid) and tricalcium phosphate PLDLA-TCP.
使用肌腱锚固装置可以促进创伤后或应对退行性病变过程时肌腱与骨骼的快速有效固定。仿骨生物材料,特别是设计成与天然骨矿物质相含量匹配的生物可吸收聚合物复合材料,已被证明具有骨诱导和骨传导特性,并在过去20年中用于骨固定。在本研究中,研究了一种由聚(辛二甲酸柠檬酸酯)(POC)和羟基磷灰石(HA)(POC-HA)配制而成的可吸收、生物活性且机械性能强劲的柠檬酸盐基复合材料,作为一种潜在的肌腱固定生物材料。用人间充质干细胞(hMSCs)进行的体外分析表明,POC-HA复合材料支持细胞粘附、生长和增殖,并增加钙沉积、碱性磷酸酶产生、成骨特异性基因的表达以及导致骨诱导和骨传导的经典途径的激活。在绵羊干骺端模型中对POC-HA肌腱固定装置的进一步评估表明了这种柠檬酸盐基复合材料的再生和重塑潜力。总之,本研究对柠檬酸盐衍生的复合肌腱锚的功能反应进行了全面分析,并表明相对于由聚(L-D,L-乳酸)和磷酸三钙(PLDLA-TCP)配制的常用可吸收肌腱锚固装置,柠檬酸盐基HA复合材料具有更好的机械性能和成骨性能。