Production of platelet-rich plasma (PRP)-enriched scaffolds for bone tissue regeneration with 3D printing technology

被引:0
|
作者
Tut, Tufan Arslan [1 ,2 ]
Cesur, Sumeyye [1 ,2 ]
Sahin, Ali [3 ]
Eren, Fatih [4 ,5 ,6 ]
Gunduz, Oguzhan [1 ,2 ]
机构
[1] Marmara Univ, Ctr Nanotechnol & Biomat Applicat & Res NBUAM, Istanbul, Turkiye
[2] Marmara Univ, Fac Technol, Dept Met & Mat Engn, Istanbul, Turkiye
[3] Marmara Univ, Sch Med, Dept Biochem, Genet & Metab Dis Res & Invest Ctr, Istanbul, Turkiye
[4] Marmara Univ, Sch Med, Dept Med Biol, Istanbul, Turkiye
[5] Recep Tayyip Erdogan Univ, Fac Med, Dept Med Biol, Rize, Turkiye
[6] Marmara Univ, Inst Gastroenterol, Liver Res Unit, Istanbul, Turkiye
关键词
Platelet rich plasma (PRP); 3D printed scaffold; Bone tissue engineering; Gelatin; Sodium alginate; Hydroxyapatite; COMPOSITE SCAFFOLDS; STEM-CELLS; PORE-SIZE; DIFFERENTIATION; COLLAGEN;
D O I
10.1016/j.eurpolymj.2024.113371
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Bone disorders signify diverse abnormalities in the structure, development, and functions of bone tissue in the human body, with a significant correlation to ageing, insufficient physical activity, and escalating obesity. Recent advancements in bone tissue engineering aim to enhance bone tissue formation through the use of biomaterials, growth factors, and cells. The present study focuses on the fabrication and characterisation of scaffolds with a composition of gelatin (GEL) / sodium alginate (SA) / hydroxyapatite (HA) / platelet-rich plasma (PRP) using the 3D printing process. The inclusion of PRP, derived from blood, is of particular interest due to its potential to enhance bone regeneration through various growth factors. Scanning electron microscope (SEM) analysis revealed average pore sizes ranging from 481.50 +/- 7.65 to 623.96 +/- 11.54 mu m. SEM images also showed that scaffold surfaces became smooth as the concentration of PRP increased. The mechanical test results demonstrated that as the PRP increased, the compressive strength decreased. When the swelling and degradation behaviours of scaffolds were examined, it was observed that GEL/SA/HA/3PRP scaffolds exhibited approximately 200 % swelling capability until the 4th day. GEL/SA/HA scaffolds showed a degradation behaviour about 70 % higher compared to other groups. A controlled release profile of PRP was maintained up to the 144th, 216th, and 240th hours from the scaffolds. According to the highest correlation coefficients (R2) in the release kinetics of scaffolds, GEL/SA/HA/0.5PRP and GEL/SA/HA/1PRP scaffolds were explained by the first-order model. In contrast, the GEL/SA/HA/3PRP scaffold was described using the Korsmeyer-Peppas model. The MTT analysis conducted with osteoblast cells showed that scaffolds did not demonstrate any toxic effects and facilitated cell adhesion by inducing the formation of extensions. These findings underscore the potential of PRP-incorporated GEL/SA/HA composites as a promising approach for bone tissue engineering, offering significant advancements in the treatment of bone disorders. This could lead to more effective treatments for bone disorders and injuries, reducing the need for more invasive procedures and improving patient recovery times.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] The effect of the platelet concentration in platelet-rich plasma gel on the regeneration of bone
    Kawasumi, M.
    Kitoh, H.
    Siwicka, K. A.
    Ishiguro, N.
    JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 2008, 90B (07): : 966 - 972
  • [22] Stereolithographic 3D Printing of Bioceramic Scaffolds of a Given Shape and Architecture for Bone Tissue Regeneration
    Putlyaev V.I.
    Yevdokimov P.V.
    Mamonov S.A.
    Zorin V.N.
    Klimashina E.S.
    Rodin I.A.
    Safronova T.V.
    Garshev A.V.
    Inorg. Mater.: Appl. Res., 2019, 5 (1101-1108): : 1101 - 1108
  • [23] Autologous platelet-rich plasma application for the optimization of bone tissue reparative regeneration in osteopenia
    Ivchenko, D. V.
    Miroshnikov, V. V.
    PATHOLOGIA, 2018, (02): : 248 - 258
  • [24] 3D printing PLGA scaffolds following chemical modification for cartilage and bone tissue regeneration
    Lee, Su Hong
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 258
  • [25] Effect of platelet-rich plasma on bone regeneration in autogenous bone graft
    Choi, BH
    Im, CJ
    Huh, JY
    Suh, JJ
    Lee, SH
    INTERNATIONAL JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2004, 33 (01) : 56 - 59
  • [26] 3D printing of ceramic scaffolds for engineering of bone tissue
    Barinov S.M.
    Vakhrushev I.V.
    Komlev V.S.
    Mironov A.V.
    Popov V.K.
    Teterina A.Y.
    Fedotov A.Y.
    Yarygin K.N.
    Inorganic Materials: Applied Research, 2015, 6 (04) : 316 - 322
  • [27] 3D printing of acellular scaffolds for bone defect regeneration: A review
    Ghorbani, Farnaz
    Li, Dejian
    Ni, Shuo
    Zhou, Ying
    Yu, Baoqing
    MATERIALS TODAY COMMUNICATIONS, 2020, 22
  • [28] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Pengju Wang
    Yazhou Sun
    Xiaoquan Shi
    Huixing Shen
    Haohao Ning
    Haitao Liu
    Bio-Design and Manufacturing, 2021, (02) : 344 - 378
  • [29] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Pengju Wang
    Yazhou Sun
    Xiaoquan Shi
    Huixing Shen
    Haohao Ning
    Haitao Liu
    Bio-Design and Manufacturing, 2021, 4 (02) : 344 - 378
  • [30] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Wang, Pengju
    Sun, Yazhou
    Shi, Xiaoquan
    Shen, Huixing
    Ning, Haohao
    Liu, Haitao
    BIO-DESIGN AND MANUFACTURING, 2021, 4 (02) : 344 - 378