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3D-printed bi-layered polymer/hydrogel construct for interfacial tissue regeneration in a canine model

材料科学 生物医学工程 聚己内酯 明胶 自愈水凝胶 生物相容性 软组织 脚手架 再生(生物学) 组织工程 粘附 聚合物 复合材料 化学 病理 高分子化学 医学 细胞生物学 生物 生物化学 冶金
作者
Mohammad Reza Jamalpour,Amir Yadegari,Farshid Vahdatinia,Leila Mohammadi Amirabad,Shokoofeh Jamshidi,Setareh Shojaee,Abbas Shokri,Erfan Moeinifard,Meisam Omidi
出处
期刊:Dental Materials [Elsevier BV]
卷期号:38 (8): 1316-1329 被引量:5
标识
DOI:10.1016/j.dental.2022.06.020
摘要

There are complications in applying regenerative strategies at the interface of hard and soft tissues due to the limited designs of constructs that can accommodate different cell types in different sites. The problem originates from the challenges in the adhesion of dissimilar materials, such as polymers and hydrogels, that can be suitable for regenerating different tissues such as bone and soft tissues. This paper presents a design of a new hybrid construct in which a polymer (polycaprolactone (PCL)) membrane firmly adheres to a layer of hydrogen (gelatin). PCL membranes with defined size and porosity were fabricated using 3D printing. The gelatin layer was attached to the PCL membranes using the aminolysis procedure. We have examined this construct for the application of Guided Bone Regeneration (GBR) as a typical surgical regenerative procedure of the oral cavity at the interface of bone and soft tissue. Complete in vitro and in vivo investigations on canine tibia bone defects have been performed. Histological analyses for fibrosis morphometric and bone morphometric evaluation, as well as bone-fibrosis histological grading and CBCT imaging, were conducted. Chemical and morphological studies of the membrane proved that gelatin was uniformly attached to the aminolyzed PCL membranes. The in vitro and in vivo studies indicated the membrane's biocompatibility, mechanical stability, and barrier function for the GBR application. Furthermore, in vitro study showed that the membranes could improve osteogenesis and the regeneration of bone defects. The results illustrated that the mean bone density in the membrane groups was about three times more than that of the control group. The fabricated 3D-printed hybrid Gelatin/PCL bi-layered membrane can be a good candidate for interfacial tissue engineering and a promising membrane for GBR procedure.

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