Carbon nanotubes with high bone-tissue compatibility and bone-formation acceleration effects

被引:212
|
作者
Usui, Yuki [1 ]
Aoki, Kaoru [1 ]
Narita, Nobuyo [1 ]
Murakami, Narumichi [1 ]
Nakamura, Isao [1 ]
Nakamura, Koichi [1 ]
Ishigaki, Norio [1 ]
Yamazaki, Hiroshi [1 ]
Horiuchi, Hiroshi [1 ]
Kato, Hiroyuki [1 ]
Taruta, Seiichi [3 ]
Kim, Yoong Ahm [3 ]
Endo, Morinobu [3 ]
Saito, Naoto [2 ]
机构
[1] Shinshu Univ, Sch Med, Dept Orthopaed Surg, Matsumoto, Nagano 3908621, Japan
[2] Shinshu Univ, Sch Hlth Sci, Dept Appl Phys Therapy, Matsumoto, Nagano 3908621, Japan
[3] Shinshu Univ, Fac Engn, Nagano 3808553, Japan
关键词
biocompatible materials; biomaterials; carbon nanotubes; drug delivery; medicine;
D O I
10.1002/smll.200700670
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Carbon nanotubes (CNTs) have been used in various fields as composites with other substances or alone to develop highly functional materials. CNTs hold great interest with respect to biomaterials, particularly those to be positioned in contact with bone such as prostheses for arthroplasty, plates or screws for fracture fixation, drug delivery systems, and scaffolding for bone regeneration. Accordingly, bone-tissue compatibility of CNTs and CNT influence on bone formation are important issues, but the effects of CNTs on bone have not been delineated. Here, it is found that multi-walled CNTs adjoining bone induce little local inflammatory reaction, show high bone-tissue compatibility, permit bone repair, become integrated into new bone, and accelerate bone formation stimulated by recombinant human bone morphogenetic protein-2 (rhBMP-2). This study provides an initial investigational basis for CNTs in biomaterials that are used adjacent to bone, including uses to promote bone regeneration. These findings should encourage development of clinical treatment modalities involving CNTs.
引用
收藏
页码:240 / 246
页数:7
相关论文
共 50 条
  • [1] THE EFFECTS OF SURGICEL ON BONE-FORMATION
    NAPPI, JF
    LEHMAN, JA
    [J]. CLEFT PALATE JOURNAL, 1980, 17 (04): : 291 - 296
  • [2] Biocompatibility and bone tissue compatibility of alumina ceramics reinforced with carbon nanotubes
    Ogihara, Nobuhide
    Usui, Yuki
    Aoki, Kaoru
    Shimizu, Masayuki
    Narita, Nobuyo
    Hara, Kazuo
    Nakamura, Koichi
    Ishigaki, Norio
    Takanashi, Seiji
    Okamoto, Masanori
    Kato, Hiroyuki
    Haniu, Hisao
    Ogiwara, Naoko
    Nakayama, Noboru
    Taruta, Seiichi
    Saito, Naoto
    [J]. NANOMEDICINE, 2012, 7 (07) : 981 - 993
  • [3] Scaffolds for bone-tissue engineering
    Lee, Seunghun S.
    Du, Xiaoyu
    Kim, Inseon
    Ferguson, Stephen J.
    [J]. MATTER, 2022, 5 (09) : 2722 - 2759
  • [4] EFFECTS OF ZINC ON ECTOPIC BONE-FORMATION
    CALHOUN, NR
    SMITH, JC
    BECKER, KL
    [J]. ORAL SURGERY ORAL MEDICINE ORAL PATHOLOGY ORAL RADIOLOGY AND ENDODONTOLOGY, 1975, 39 (05): : 698 - 706
  • [5] HIGH PROTEIN EFFECTS ON BONE-FORMATION IN DIABETIC FETAL RATS
    HARVEY, WK
    NAKAMOTO, T
    [J]. JOURNAL OF DENTAL RESEARCH, 1986, 65 : 323 - 323
  • [6] IMPACT OF CORTICOSTEROIDS ON BONE-TISSUE
    KAISER, H
    [J]. ZEITSCHRIFT FUR RHEUMATOLOGIE, 1989, 48 : 21 - 26
  • [7] Injectable cell-free template for bone-tissue formation
    Bergman, Kristoffer
    Engstrand, Thomas
    Hilborn, Jons
    Ossipov, Dmitri
    Piskounova, Sonya
    Bowden, Tim
    [J]. JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2009, 91A (04) : 1111 - 1118
  • [8] Fabrication of Scaffolds for Bone-Tissue Regeneration
    Chocholata, Petra
    Kulda, Vlastimil
    Babuska, Vaclav
    [J]. MATERIALS, 2019, 12 (04)
  • [9] Materials design for bone-tissue engineering
    Koons, Gerry L.
    Diba, Mani
    Mikos, Antonios G.
    [J]. NATURE REVIEWS MATERIALS, 2020, 5 (08) : 584 - 603
  • [10] BONE-FORMATION IN MENISCUS
    STANISIC, M
    GERBER, T
    [J]. HELVETICA CHIRURGICA ACTA, 1975, 42 (1-2) : 35 - 38