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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Self-hardening calcium phosphate cement-mesh composite: Reinforcement, macropores, and cell response
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Self-hardening calcium phosphate cement-mesh composite: Reinforcement, macropores, and cell response

机译:自硬化磷酸钙水泥网布复合材料:增强,大孔和细胞反应

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Calcium phosphate cement (CPC) self-hardens to form hydroxyapatite, has excellent osteoconductivity and bone-replacement ability, and is promising for craniofacial and orthopedic repair. However, its low strength limits CPC to only nonstress repairs. This study aimed to reinforce CPC with meshes to increase strength, and to form macropores in CPC for bone ingrowth after mesh dissolution. A related aim was to evaluate the biocompatibility of the new CPC-mesh composite. Absorbable polyglactin meshes, a copolymer of poly(glycolic) and poly(lactic) acids, were incorporated into CPC to provide strength and then form interconnected cylindrical macropores suitable for vascular ingrowth. The composite flexural strength, work-of-fracture, and elastic modulus were measured as a function of the number of mesh sheets in CPC ranging from 1 (a mesh on the tensile side of the specimen) up to 13 (mesh sheets throughout the entire specimen), and as a function of immersion time in a physiological solution from 1 to 84 days. Cell culture was performed with osteoblast-like cells and the cell viability was quantified using an enzymatic assay. The strengths (mean +- SD; n = 6) of CPC containing 13 or 6 meshes were 24.5 +- 7.8 and 19.7 +- 4.3 MPa, respectively, not significantly different from each other; both were significantly higher than 8.8 +- 1.9 MPa of CPC without mesh (Tukey's at 0.95). The work-of-fracture of CPC with 13 or 6 meshes was 3.35 +- 0.80 and 2.95 +-0.58 kJ/m~2, respectively, two orders of magnitude higher than 0.021 +- 0.006 kJ/m~2 of CPC without mesh. Interconnected macropores were formed in CPC at 84 days' immersion. The new CPC-mesh formulation supported the adhesion, spreading, proliferation, and viability of osteoblast-like cells in vitro. In conclusion, absorbable meshes in CPC increased the implant strength by three-fold and work-of-fracture by 150 times; interconnected macropores suitable for bone ingrowth were created in CPC after mesh dissolution. The higher strength may help extend the use of CPC to larger stress-bearing repairs, and the macropores may facilitate tissue ingrowth and integration of CPC with adjacent bone.
机译:磷酸钙水泥(CPC)自硬化形成羟基磷灰石,具有出色的骨传导性和骨置换能力,并有望用于颅面和骨科修复。但是,它的低强度将CPC限制为仅进行非应力修复。这项研究旨在通过网孔增强CPC以增加强度,并在网孔溶解后在CPC内形成大孔以促进骨骼向内生长。一个相关的目的是评估新型CPC网状复合材料的生物相容性。将可吸收的聚乳胶网眼(聚(乙醇酸)和聚(乳酸)酸的共聚物)掺入CPC中以提供强度,然后形成适合于血管向内生长的相互连接的圆柱形大孔。测量复合挠曲强度,断裂功和弹性模量与CPC中网片的数量的关系,CPC的范围为1(样本拉伸侧的网片)到13(整个样品的网片)标本),以及在生理溶液中浸泡1至84天的时间。用成骨细胞样细胞进行细胞培养,并使用酶测定法定量细胞活力。包含13或6个网孔的CPC的强度(平均值±SD; n = 6)分别为24.5±7.8和19.7±4.3 MPa,彼此之间无显着差异。两者均显着高于不带筛网的CPC的8.8±1.9 MPa(Tukey值为0.95)。具有13或6个网格的CPC的断裂功分别为3.35 +-0.80和2.95 + -0.58 kJ / m〜2,比不带网格的CPC的0.021 +-0.006 kJ / m〜2高两个数量级。 。浸泡84天后,CPC中形成了相互连接的大孔。新的CPC网状配方可支持成骨样细胞在体外的粘附,扩散,增殖和活力。总之,CPC中的可吸收网片将植入物强度提高了三倍,断裂功提高了150倍。网格溶解后,在CPC中创建了适合骨骼向内生长的相互连接的大孔。较高的强度可以帮助将CPC的使用范围扩大到更大的承压修复,并且大孔可以促进组织向内生长以及CPC与相邻骨骼的整合。

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