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      KCI등재 SCIE SCOPUS

      Pre-Treatment of Titanium Alloy with Platelet-Rich Plasma Enhances Human Osteoblast Responses

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      https://www.riss.kr/link?id=A105870949

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      다국어 초록 (Multilingual Abstract)

      Osseointegration, the histological direct bone-to-implant contact, is the ultimate goal of implant healing and the first prerequisite for long-term success of endosseous implants. It is well-known that metal implants with rough surfaces achieve better...

      Osseointegration, the histological direct bone-to-implant contact, is the ultimate goal of implant healing and the first prerequisite for long-term success of endosseous implants. It is well-known that metal implants with rough surfaces achieve better osseointegration than those with smooth surfaces in vivo. The implantation of metal materials into bone is always accompanied by bleeding. The implant surface is initially coated with blood and these initial events could determine subsequent osseointegration. However, there is little concordance between in vitro results and in vivo findings regarding the effect of surface roughness on osseointegration. Here, we show that the osteoblast response to metal surfaces pre-treated with platelets and plasma proteins elucidates the superior osseointegration of rough surfaced implants in vivo. We found that osteoblast attachment, proliferation, and osteoblastic differentiation were significantly higher on a rough titanium surface pre-treated with platelet-rich plasma (PRP) than on the same surface without pretreatment. Furthermore, we found that the three-dimensional fibrillar network formed on the rough surface of the titanium by PRP pre-treatment might enhance osteoblast responses. Our results demonstrate why osseointegration is found to be most active on metal implants with a rough surface in vivo. We anticipate that our assay would be a useful tool for mimicking the in vivo model of osseointegration. Because cellular responses to the titanium implant that are pre-treated with platelet and plasma proteins on their surfaces after the biomimetic process in vitro, may be more similar to the events that occur in vivo.

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      참고문헌 (Reference)

      1 Davies JE, "Understanding peri-implant endosseous healing" 67 : 932-949, 2003

      2 Boyan BD, "Titanium surface roughness alters responsiveness of MG63 osteoblast-like cells to 1 alpha,25-(OH)2D3" 39 : 77-85, 1998

      3 Schroeder A, "Tissue reaction to an implant of a titanium hollow cylinder with a titanium surface spray layer" 86 : 713-727, 1976

      4 Di Iorio D, "Quantitative evaluation of the fibrin clot extension on different implant surfaces: an in vitro study" 74 : 636-642, 2005

      5 van den Dolder J, "Platelet-rich plasma: quantification of growth factor levels and the effect on growth and differentiation of rat bone marrow cells" 12 : 3067-3073, 2006

      6 Yang D, "Platelet-derived growth factor (PDGF)-AA: a self-imposed cytokine in the proliferation of human fetal osteoblasts" 12 : 1271-1274, 2000

      7 Park JY, "Platelet interactions with titanium: modulation of platelet activity by surface topography" 22 : 2671-2682, 2001

      8 Marco F, "Peri-implant osteogenesis in health and osteoporosis" 36 : 630-644, 2005

      9 Boyan BD, "Osteoblasts generate an osteogenic microenvironment when grown on surfaces with rough microtopographies" 6 : 22-27, 2003

      10 Veis AA, "Osseointegration of Osseotite and machined titanium implants in autogenous bone graft. A histologic and histomorphometric study in dogs" 15 : 54-61, 2004

      1 Davies JE, "Understanding peri-implant endosseous healing" 67 : 932-949, 2003

      2 Boyan BD, "Titanium surface roughness alters responsiveness of MG63 osteoblast-like cells to 1 alpha,25-(OH)2D3" 39 : 77-85, 1998

      3 Schroeder A, "Tissue reaction to an implant of a titanium hollow cylinder with a titanium surface spray layer" 86 : 713-727, 1976

      4 Di Iorio D, "Quantitative evaluation of the fibrin clot extension on different implant surfaces: an in vitro study" 74 : 636-642, 2005

      5 van den Dolder J, "Platelet-rich plasma: quantification of growth factor levels and the effect on growth and differentiation of rat bone marrow cells" 12 : 3067-3073, 2006

      6 Yang D, "Platelet-derived growth factor (PDGF)-AA: a self-imposed cytokine in the proliferation of human fetal osteoblasts" 12 : 1271-1274, 2000

      7 Park JY, "Platelet interactions with titanium: modulation of platelet activity by surface topography" 22 : 2671-2682, 2001

      8 Marco F, "Peri-implant osteogenesis in health and osteoporosis" 36 : 630-644, 2005

      9 Boyan BD, "Osteoblasts generate an osteogenic microenvironment when grown on surfaces with rough microtopographies" 6 : 22-27, 2003

      10 Veis AA, "Osseointegration of Osseotite and machined titanium implants in autogenous bone graft. A histologic and histomorphometric study in dogs" 15 : 54-61, 2004

      11 Brånemark PI, "Osseointegrated implants in the treatment of the edentulous jaw. Experience from a 10-year period" 16 : 1-132, 1977

      12 Bowers KT, "Optimization of surface micromorphology for enhanced osteoblast responses in vitro" 7 : 302-310, 1992

      13 Eriksson C, "Novel in vivo method for evaluation of healing around implants in bone" 66 : 662-668, 2003

      14 Anitua E, "New insights into and novel applications for platelet-rich fibrin therapies" 24 : 227-234, 2006

      15 Lossdörfer S, "Microrough implant surface topographies increase osteogenesis by reducing osteoclast formation and activity" 70 : 361-369, 2004

      16 Hong Suk Kwak, "Meniscal repair in vivo using human chondrocyte-seeded PLGA mesh scaffold pretreated with platelet-rich plasma" Wiley-Blackwell 2014

      17 Wilson CJ, "Mediation of biomaterial-cell interactions by adsorbed proteins: a review" 11 : 1-18, 2005

      18 Lohmann CH, "Maturation state determines the response of osteogenic cells to surface roughness and 1,25-dihydroxyvitamin D3" 15 : 1169-1180, 2000

      19 Buser D, "Influence of surface characteristics on bone integration of titanium implants. A histomorphometric study in miniature pigs" 25 : 889-902, 1991

      20 Arpornmaeklong P, "Influence of platelet-rich plasma (PRP) on osteogenic differentiation of rat bone marrow stromal cells. An in vitro study" 33 : 60-70, 2004

      21 Zhao G, "High surface energy enhances cell response to titanium substrate microstructure" 74 : 49-58, 2005

      22 Shi GS, "H2O2/HCl and heat-treated Ti-6Al-4V stimulates pre-osteoblast proliferation and differentiation" 108 : 368-375, 2009

      23 Cooper LF, "Formation of mineralizing osteoblast cultures on machined, titanium oxide grit-blasted, and plasma-sprayed titanium surfaces" 14 : 37-47, 1999

      24 Lakstein D, "Enhanced osseointegration of grit-blasted, NaOH-treated and electrochemically hydroxyapatite-coated Ti-6Al-4V implants in rabbits" 5 : 2258-2269, 2009

      25 Shin SH, "Enhanced cellular responses of human bone marrow stromal cells cultured on pretreated surface with allogenic platelet-rich plasma" 53 : 318-326, 2012

      26 Germanier Y, "Enhanced bone apposition around biofunctionalized sandblasted and acid-etched titanium implant surfaces. A histomorphometric study in miniature pigs" 17 : 251-257, 2006

      27 Isa ZM, "Effects of fluoride-modified titanium surfaces on osteoblast proliferation and gene expression" 21 : 203-211, 2006

      28 Martin JY, "Effect of titanium surface roughness on proliferation, differentiation, and protein synthesis of human osteoblast-like cells (MG63)" 29 : 389-401, 1995

      29 Ong JL, "Effect of surface topography of titanium on surface chemistry and cellular response" 5 : 83-88, 1996

      30 Wu Y, "Differential response of Staphylococci and osteoblasts to varying titanium surface roughness" 32 : 951-960, 2011

      31 Mustafa K, "Determining optimal surface roughness of TiO(2) blasted titanium implant material for attachment, proliferation and differentiation of cells derived from human mandibular alveolar bone" 12 : 515-525, 2001

      32 Davies JE, "Bone bonding at natural and biomaterial surfaces" 28 : 5058-5067, 2007

      33 Franchi M, "Biological fixation of endosseous implants" 36 : 665-671, 2005

      34 Nygren H, "Adhesion and activation of platelets and polymorphonuclear granulocyte cells at TiO2 surfaces" 129 : 35-46, 1997

      35 Cooper LF, "A role for surface topography in creating and maintaining bone at titanium endosseous implants" 84 : 522-534, 2000

      36 Cochran DL, "A comparison of endosseous dental implant surfaces" 70 : 1523-1539, 1999

      37 Wennerberg A, "A 1-year follow-up of implants of differing surface roughness placed in rabbit bone" 12 : 486-494, 1997

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      학술지 이력
      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : 조직공학과 재생의학
      외국어명 : Tissue Engineering and Regenerative Medicine
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 등재학술지 선정 (기타) KCI등재
      2012-01-01 평가 등재후보 1차 FAIL (기타) KCI등재후보
      2011-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2010-01-01 평가 등재후보 1차 FAIL (등재후보1차) KCI등재후보
      2008-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.08 0.42 0.81
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.69 0.51 0.367 0.03
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