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Three-dimensional kagome structures in a PCL/HA-based hydrogel scaffold to lead slow BMP-2 release for effective bone regeneration

摘要Osteoconductive function is remarkably low in bone disease in the absence of bone tissue surrounding the grafting site,or if the bone tissue is in poor condition.Thus,an effective bone graft in terms of both osteoconductivity and osteoinductivity is required for clinical therapy.Recently,the three-dimensional(3D)kagome structure has been shown to be advantageous for bone tissue regeneration due to its mechanical properties.In this study,a polycaprolactone(PCL)kagome-structure scaffold containing a hyaluronic acid(HA)-based hydrogel was fabricated using a 3D printing technique.The retention capacity of the hydrogel in the scaffold was assessed in vivo with a rat calvaria subcutaneous model for 3 weeks,and the results were compared with those obtained with conventional 3D-printed PCL grid-structure scaffolds containing HA-based hydrogel and bulk-type HA-based hydrogel.The retained hydrogel in the kagome-structure scaffold was further evaluated by in vivo imaging system analysis.To further reinforce the osteoinductivity of the kagome-structure scaffold,a PCL kagome-structure scaffold with bone morphogenetic protein-2(BMP-2)containing HA hydrogel was fabricated and implanted in a calvarial defect model of rabbits for 16 weeks.The bone regeneration characteristics were evaluated with hematoxylin and eosin(H&E),Masson's trichrome staining,and micro-CT image analysis.

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作者 Se-Hwan Lee [1] Kang-Gon Lee [2] Jaeyeon Lee [2] Yong Sang Cho [3] Min-Soo Ghim [4] Soojin Kim [5] Su-Jin Heo [1] Yongdoo Park [2] Young-Sam Cho [6] Bu-Kyu Lee [7] 学术成果认领
作者单位 McKay Orthopaedic Research Laboratory,Department of Orthopaedic Surgery,Perelman School of Medicine,University of Pennsylvania,36th Street and Hamilton Walk,Philadelphia,PA 19104,USA [1] Department of Biomedical Sciences,College of Medicine,Korea University,73,Goryeodae-ro,Seongbuk-gu,Seoul 02841,Republic of Korea [2] Medical Device Development Center,Daegu-Gyeongbuk Medical Innovation Foundation(K-MEDI hub),80,Cheombok-ro,Dong-gu,Daegu 41061,Republic of Korea [3] Department of Mechanical Engineering,College of Engineering,Wonkwang University,460,Iksan-daero,Iksan 54538,Republic of Korea [4] Biomedical Engineering Research Center,Asan Institute for Life Sciences,Asan Medical Center,88,Olympic-ro,Songpa-gu,Seoul 05505,Republic of Korea [5] Department of Mechanical Design Engineering,College of Engineering,Wonkwang University,460,Iksan-daero,Iksan 54538,Republic of Korea;MECHABIO Group,Wonkwang University,460,Iksan-daero,Iksan 54538,Republic of Korea [6] Biomedical Engineering Research Center,Asan Institute for Life Sciences,Asan Medical Center,88,Olympic-ro,Songpa-gu,Seoul 05505,Republic of Korea;Department of Oral and Maxillofacial Surgery,Asan Institute for Life Sciences,Asan Medical Center,88,Olympic-ro,Songpa-gu,Seoul 05505,Republic of Korea [7]
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发布时间 2023-03-15(万方平台首次上网日期,不代表论文的发表时间)
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