Fabrication of MgCl2/PCL biocomposite scaffolds using 3D bio-plotting system to regenerate long bone critical-sized defects

Cited 0 time in scopus
Metadata Downloads

Full metadata record

DC FieldValueLanguage
dc.contributor.authorY Z Xin-
dc.contributor.authorM Quan-
dc.contributor.authorS J Yang-
dc.contributor.authorW D Kim-
dc.contributor.authorS A Park-
dc.contributor.authorJ Yu-
dc.contributor.authorB Kim-
dc.contributor.authorCho Rok Jung-
dc.contributor.authorJ Lee-
dc.contributor.authorY Y Kim-
dc.date.accessioned2019-01-23T16:31:12Z-
dc.date.available2019-01-23T16:31:12Z-
dc.date.issued2018-
dc.identifier.issn2157-9083-
dc.identifier.uri10.1166/jbt.2018.1864ko
dc.identifier.urihttps://oak.kribb.re.kr/handle/201005/18294-
dc.description.abstractThe regeneration of critical-sized bone defects is one of the key obstacles in bone tissue engineering. To address this issue, several methods have been proposed, including autologous bone grafts. However, each of these methods has its limitations. In this study, we fabricated a MgCl2/poly epsilon-caprolactone biocomposite scaffold for the regeneration of critical-sized bone defects. Bone regeneration tests were performed using 18 male New Zealand white rabbits aged >4 months (>3.5 kg). Bone defects were made on the radius of both front feet (defect length =10 mm) and fixed using a K-wire. The defect on the left radius was used as a control, whereas the right radius was filled with pure poly epsilon-caprolactone or MgCl2/poly epsilon-caprolactone composite scaffolds (n = 6 each). Our results demonstrated that bone regeneration rates of MgCl2/poly epsilon-caprolactone composite scaffolds were faster than those of the negative and positive controls.-
dc.publisherAmer Scientific Publishers-
dc.titleFabrication of MgCl2/PCL biocomposite scaffolds using 3D bio-plotting system to regenerate long bone critical-sized defects-
dc.title.alternativeFabrication of MgCl2/PCL biocomposite scaffolds using 3D bio-plotting system to regenerate long bone critical-sized defects-
dc.typeArticle-
dc.citation.titleJournal of Biomaterials and Tissue Engineering-
dc.citation.number8-
dc.citation.endPage1083-
dc.citation.startPage1076-
dc.citation.volume8-
dc.contributor.affiliatedAuthorCho Rok Jung-
dc.contributor.alternativeNameXin-
dc.contributor.alternativeNameQuan-
dc.contributor.alternativeName양석조-
dc.contributor.alternativeName김완두-
dc.contributor.alternativeName박수아-
dc.contributor.alternativeName유준제-
dc.contributor.alternativeName김병관-
dc.contributor.alternativeName정초록-
dc.contributor.alternativeName이준희-
dc.contributor.alternativeName김영열-
dc.identifier.bibliographicCitationJournal of Biomaterials and Tissue Engineering, vol. 8, no. 8, pp. 1076-1083-
dc.identifier.doi10.1166/jbt.2018.1864-
dc.subject.keywordBone Defects-
dc.subject.keywordBiocomposite Scaffold-
dc.subject.keywordTissue Engineering-
dc.subject.keyword3D Bio-Plotting System-
dc.subject.keywordRegeneration-
dc.subject.localBone Defects-
dc.subject.localBiocomposite Scaffold-
dc.subject.localtissue engineering-
dc.subject.localTissue engineering-
dc.subject.localTissue Engineering-
dc.subject.local3D Bio-Plotting System-
dc.subject.localRegeneration-
dc.subject.localregeneration-
dc.description.journalClassY-
Appears in Collections:
Division of Research on National Challenges > Stem Cell Convergenece Research Center > 1. Journal Articles
Files in This Item:
  • There are no files associated with this item.


Items in OpenAccess@KRIBB are protected by copyright, with all rights reserved, unless otherwise indicated.