Comparative study in vivo of the osseointegration of 3D-printed and plasma-coated titanium implants

被引:2
|
作者
Bondarenko, Stanislav [1 ]
Filipenko, Volodymyr [1 ]
Ashukina, Nataliya [2 ]
Maltseva, Valentyna [2 ]
Ivanov, Gennadiy [3 ]
Lazarenko, Iurii [4 ]
Sereda, Dmytro [5 ]
Schwarzkopf, Ran [6 ]
机构
[1] Natl Acad Med Sci Ukraine, Sytenko Inst Spine & Joint Pathol, Dept Joint Pathol, 80 Pushkinska St, UA-61024 Kharkiv, Ukraine
[2] Natl Acad Med Sci Ukraine, Sytenko Inst Spine & Joint Pathol, Lab Connect Tissue Morphol, UA-61024 Kharkiv, Ukraine
[3] Natl Acad Med Sci Ukraine, Sytenko Inst Spine & Joint Pathol, Expt Pathol, UA-61024 Kharkiv, Ukraine
[4] Mil Med Clin Ctr Cent Reg, Dept Traumatol, UA-21018 Vinnytsia, Ukraine
[5] Odesa City Hosp 11, Dept Surg, UA-65006 Odesa, Ukraine
[6] NYU Langone Orthoped Hosp, Hosp Joint Dis, New York, NY 10003 USA
来源
WORLD JOURNAL OF ORTHOPEDICS | 2023年 / 14卷 / 09期
关键词
Rats; Hip arthroplasty; Femur; Porosity; 3-dimensional printing; Microscopy; TOTAL HIP-ARTHROPLASTY;
D O I
10.5312/wjo.v14.i9.682
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
BACKGROUND Total hip arthroplasty is a common surgical treatment for elderly patients with osteoporosis, particularly in postmenopausal women. In such cases, highly porous acetabular components are a favorable option in achieving osseointegration. However, further discussion is needed if use of such acetabular components is justified under the condition of normal bone mass. AIM To determine the features of osseointegration of two different types of titanium implants [3-dimensional (3D)-printed and plasma-coated titanium implants] in bone tissue of a distal metaphysis in a rat femur model. METHODS This study was performed on 20 white male laboratory rats weighing 300-350 g aged 6 mo. Rats were divided into two groups of 10 animals, which had two different types of implants were inserted into a hole defect (2 x 3 mm) in the distal metaphysis of the femur: Group I: 3D-printed titanium implant (highly porous); Group II: Plasma-coated titanium implant. After 45 and 90 d following surgery, the rats were sacrificed, and their implanted femurs were extracted for histological examination. The relative perimeter (%) of bone trabeculae [bone-implant contact (BIC%)] and bone marrow surrounding the titanium implants was measured. RESULTS Trabecular bone tissue was formed on the 45th day after implantation around the implants regardless of their type. 45 d after surgery, group I (3D-printed titanium implant) and group II (plasma-coated titanium implant) did not differ in BIC% (83.51 +/- 8.5 vs 84.12 +/- 1.73; P = 0.838). After 90 d, the BIC% was higher in group I (87.04 +/- 6.99 vs 81.24 +/- 7.62; P = 0.049), compared to group II. The relative perimeter of the bone marrow after 45 d did not differ between groups and was 16.49% +/- 8.58% for group I, and 15.88% +/- 1.73% for group II. Futhermore, after 90 d, in group I the relative perimeter of bone marrow was 1.4 times smaller (12.96 +/- 6.99 vs 18.76 +/- 7.62; P = 0.049) compared to the relative perimeter of bone marrow in group II. CONCLUSION The use of a highly porous titanium implant, manufactured with 3D printing, for acetabular components provides increased osseointegration compared to a plasma-coated titanium implant.
引用
收藏
页码:682 / 689
页数:9
相关论文
共 50 条
  • [21] Engineering of Micro- to Nanostructured 3D-Printed Drug-Releasing Titanium Implants for Enhanced Osseointegration and Localized Delivery of Anticancer Drugs
    Maher, Shaheer
    Kaur, Gagandeep
    Lima-Marques, Luis
    Evdokiou, Andreas
    Losic, Dusan
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (35) : 29562 - 29570
  • [22] Functionalized biomimetic mineralized collagen promotes osseointegration of 3D-printed titanium alloy microporous interface
    Sheng, Xiao
    Liu, He
    Xu, Yu
    Wang, Zhonghan
    Zhang, Weimin
    Li, Chen
    Wang, Jincheng
    MATERIALS TODAY BIO, 2024, 24
  • [23] Nickel-coated 3D-printed titanium electrodes for electrochemical flow reactors
    Arenas, L. F.
    Miranda-Alcantara, B.
    Kaishubayeva, N.
    Abahussain, A. A. M.
    Rivera, F. F.
    Ponce de Leon, C.
    Walsh, F. C.
    TRANSACTIONS OF THE INSTITUTE OF METAL FINISHING, 2023, 101 (03): : 119 - 125
  • [24] Comparative analysis of current 3D printed acetabular titanium implants
    Dall'Ava, Lorenzo
    Hothi, Harry
    Henckel, Johann
    Di Laura, Anna
    Shearing, Paul
    Hart, Alister
    3D PRINTING IN MEDICINE, 2019, 5 (01)
  • [25] Comparative analysis of current 3D printed acetabular titanium implants
    Lorenzo Dall’Ava
    Harry Hothi
    Johann Henckel
    Anna Di Laura
    Paul Shearing
    Alister Hart
    3D Printing in Medicine, 5
  • [26] Ceramic 3D-Printed Titanium Cranioplasty
    Mommaerts, Maurice Y.
    Depauw, Paul R.
    Nout, Erik
    CRANIOMAXILLOFACIAL TRAUMA & RECONSTRUCTION, 2020, 13 (04) : 329 - 333
  • [27] The Effect of Hydroxyapatite Nanocrystals on Osseointegration of Titanium Implants: An In Vivo Rabbit Study
    Breding, Karin
    Jimbo, Ryo
    Hayashi, Mariko
    Xue, Ying
    Mustafa, Kamal
    Andersson, Martin
    INTERNATIONAL JOURNAL OF DENTISTRY, 2014, 2014
  • [28] A comparison of biocompatibility and osseointegration of ceramic and titanium implants: an in vivo and in vitro study
    Moeller, B.
    Terheyden, H.
    Acil, Y.
    Purcz, N. M.
    Hertrampf, K.
    Tabakov, A.
    Behrens, E.
    Wiltfang, J.
    INTERNATIONAL JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2012, 41 (05) : 638 - 645
  • [29] Hydroxyapatite coatings for 3D-printed facial implants
    Galvanotechnik, 2023, 114 (01): : 98 - 103
  • [30] Characterisation of 3D-printed acetabular hip implants
    Nicum, Arya
    Hothi, Harry
    Henckel, Johann
    di Laura, Anna
    Schlueter-Brust, Klaus
    Hart, Alister
    EFORT OPEN REVIEWS, 2024, 9 (09) : 862 - 872