Comparative osteoconductivity of bone void fillers with antibiotics in a critical size bone defect model

被引:8
|
作者
Oliver, Rema A. [1 ]
Lovric, Vedran [1 ]
Christou, Chris [1 ]
Walsh, William R. [1 ]
机构
[1] UNSW Sydney, Surg & Orthopaed Res Labs, Prince Wales Clin Sch, Prince Wales Hosp, Level 1 Clin Sci Bldg, Randwick, NSW, Australia
关键词
CALCIUM-SULFATE; GRAFT SUBSTITUTE; SURGICAL DEBRIDEMENT; IN-VITRO; OSTEOMYELITIS; TOBRAMYCIN; VANCOMYCIN; IMPLANTS; CEMENT; BEADS;
D O I
10.1007/s10856-020-06418-1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The study aimed to evaluate the comparative osteoconductivity of three commercially available bone void fillers containing gentamicin with respect to new bone, growth, host tissue response and resorption of the implant material. Defects were created in the cancellous bone of the distal femur and proximal tibia of 12-skeletally mature sheep and filled with three commercially available bone void fillers containing gentamicin (Stimulan-G, Cerament-G, Herafill-G). Peripheral blood was taken pre-operatively and at the time of implantation, as well as at intermittent timepoints following surgery to determine systemic gentamicin levels (5-,15- and 30-minutes, 1, 2, 3, 6, 12, 24, 48- and 72-hours, 3-, 6- and 12-weeks). Decalcified, embedded samples were stained with haematoxylin and eosin (H&E) and used to assess the host tissue response and the formation of new bone in the presence of test implant materials. No adverse reactions were noted at harvest at any time points for any cancellous implantation sites with the various implant materials. Comparative microCT analysis of the Stimulan-G, Cerament-G and Herafill-G test materials revealed a similar increase in bone surface area and volume between animals implanted with Stimulan-G or Cerament-G test materials. Animals implanted with Herafill-G test materials demonstrated the lowest increases in bone volume and surface area of the test materials tested, at levels similar to the negative control sites. By 12-weeks, Stimulan-G defects were completely closed with mature bone and bone marrow whilst the Cerament-G material was still present after 12 weeks by histological examination. In conclusion, this study demonstrated differences in the bone regenerative capacity of a range of bone void fillers in an in vivo setting. [GRAPHICS] .
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Bone Regeneration Induced by Bone Porcine Block with Bone Marrow Stromal Stem Cells in a Minipig Model of Mandibular "Critical Size" Defect
    Scarano, Antonio
    Crincoli, Vito
    Di Benedetto, Adriana
    Cozzolino, Valerio
    Lorusso, Felice
    Vulpiani, Michele Podaliri
    Grano, Maria
    Kalemaj, Zamira
    Mori, Giorgio
    Grassi, Felice Roberto
    STEM CELLS INTERNATIONAL, 2017, 2017
  • [22] Histological Scoring Method to Assess Bone Healing in Critical Size Bone Defect Models
    Han, Zhihua
    Bhavsar, Mit
    Leppik, Liudmila
    Oliveira, Karla M. C.
    Barker, John H.
    TISSUE ENGINEERING PART C-METHODS, 2018, 24 (05) : 272 - 279
  • [23] Importance of the critical-size bone defect in testing bone-regenerating materials
    Bosch, C
    Melsen, B
    Vargervik, K
    JOURNAL OF CRANIOFACIAL SURGERY, 1998, 9 (04) : 310 - 316
  • [24] Modified and alternative bone cements can improve the induced membrane: Critical size bone defect model in rat femur
    Ziroglu, Nezih
    Koluman, Alican
    Kaleci, Belisa
    Tanriverdi, Bulent
    Tanriverdi, Gamze
    Kural, Alev
    Bilgili, Mustafa Gokhan
    INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2024, 55 (07):
  • [25] Autogenous bone particle/titanium fiber composites for bone regeneration in a rabbit radius critical-size defect model
    Xie, Huanxin
    Ji, Ye
    Tian, Qi
    Wang, Xintao
    Zhang, Nan
    Zhang, Yicai
    Xu, Jun
    Wang, Nanxiang
    Yan, Jinglong
    CONNECTIVE TISSUE RESEARCH, 2017, 58 (06) : 553 - 561
  • [26] Bone marrow augments demineralized bone matrix in a diaphyseal critical-size defect in the rabbit ulna model.
    Bostrom, MPG
    Abjornson, C
    Tomin, E
    Scarborough, N
    Lane, JM
    JOURNAL OF BONE AND MINERAL RESEARCH, 2000, 15 : S472 - S472
  • [27] Effects of mesenchymal stem cells in critical size bone defect
    Agacayak, S.
    Gulsun, B.
    Ucan, M. C.
    Karaoz, E.
    Nergiz, Y.
    EUROPEAN REVIEW FOR MEDICAL AND PHARMACOLOGICAL SCIENCES, 2012, 16 (05) : 679 - 686
  • [28] Testing the Critical Size in Calvarial Bone Defects: Revisiting the Concept of a Critical-Size Defect
    Cooper, Gregory M.
    Mooney, Mark P.
    Gosain, Arun K.
    Campbell, Phil G.
    Losee, Joseph E.
    Huard, Johnny
    PLASTIC AND RECONSTRUCTIVE SURGERY, 2010, 125 (06) : 1685 - 1692
  • [29] Bone void fillers in osteotomies. If, when, and which type?
    Kroell, A.
    Schiaparelli, F. F.
    de Simoni, C.
    Slevin, O.
    Hirschmann, M. T.
    ORTHOPADE, 2017, 46 (07): : 596 - 600
  • [30] Effects of a locally administered risedronate/autogenous bone graft combination on bone healing in a critical-size rabbit defect model
    Taha Özer
    Vusala Guliyeva
    Alper Aktaş
    Emre Barış
    Mert Ocak
    Journal of Orthopaedic Surgery and Research, 18