The effect of 3D-printed bone tissue scaffolds geometrical designs on bacterial biofilm formation

被引:1
|
作者
Al-Tamimi, Abdulsalam A. [1 ]
Aldawood, Esraa [2 ]
机构
[1] King Saud Univ, Coll Engn, Ind Engn Dept, Riyadh, Saudi Arabia
[2] King Saud Univ, Coll Appl Med Sci, Dept Clin Labs Sci, Riyadh, Saudi Arabia
关键词
3D printing; Auxetic; Bacterial biofilm; Bone scaffold; Geometrical design; Triply periodic minimal surface; PORE-SIZE; BIOMATERIALS; IMPLANTS;
D O I
10.36922/ijb.1768
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Bone fractures are recognized as a global health problem. A common strategy to tackle this issue is to employ a tissue engineering scaffold to accelerate tissue healing. However, one of the main challenges that can result in delaying the recovery is the risk of bacterial infections. This study aims to assess the impact of the geometry and the porosity of tissue scaffolds on the Staphylococcus aureus biofilm formation. Three triply periodic minimal surface designs of Schwarz primitive (SP), gyroid (GY), and Schwarz diamond (SD) and re-entrant auxetic (RE) design were examined and compared to a reference design (RD) considering two different porosity levels of 75% and 45%. The amount of biofilm was quantified using crystal violet assay and was visualized using scanning electron microscopy. The SP scaffold, with low porosity, exhibited a significantly less amount of bacterial biofilm formation and was regarded as having the best design among the others, while the SD with low porosity showed the greatest amount of biofilm. The morphological analysis was also in line with the crystal violet assay results. On the other hand, the surface roughness was affected by the complexity, geometrical variations, and limitations of fused filament fabrication three-dimensional printing. For the RD, SP, GY, and SD designs, an increase in surface roughness was demonstrated to increase the production of bacterial biofilms. Without statistical significance, the RE design showed the opposite trend. Contrary to other designs, the increase in pore size of the SP and GY designs was associated with the development of bacterial biofilms. This study suggests that it is possible to minimize the likelihood of bacterial biofilm formation by optimizing the scaffold geometry and its manufacturing.
引用
收藏
页码:324 / 338
页数:15
相关论文
共 50 条
  • [21] Mechanical deviation in 3D-Printed PLA bone scaffolds during biodegradation
    Senaysoy, Safa
    Ilhan, Recep
    Lekesiz, Huseyin
    Computers in Biology and Medicine, 2024, 183
  • [22] Production of 3D-Printed Tympanic Membrane Scaffolds as a Tissue Engineering Application
    Ilhan, Elif
    Ulag, Songul
    Sahin, Ali
    Ekren, Nazmi
    Kilic, Osman
    Oktar, Faik Nuzhet
    Gunduz, Oguzhan
    BIOINFORMATICS AND BIOMEDICAL ENGINEERING (IWBBIO 2020), 2020, 12108 : 175 - 184
  • [23] Biological study of polyethyleneimine functionalized polycaprolactone 3D-printed scaffolds for bone tissue engineering
    Khoshnood, Negin
    Shahrezayee, Mohammad Hossein
    Shahrezayee, Mostafa
    Shams, Alireza
    Zamanian, Ali
    JOURNAL OF APPLIED POLYMER SCIENCE, 2022, 139 (29)
  • [24] Fused Deposition Modeling 3D-Printed Scaffolds for Bone Tissue Engineering Applications: A Review
    Kumar, Pawan
    Shamim
    Muztaba, Mohammad
    Ali, Tarmeen
    Bala, Jyoti
    Sidhu, Haramritpal Singh
    Bhatia, Amit
    ANNALS OF BIOMEDICAL ENGINEERING, 2024, 52 (05) : 1184 - 1194
  • [25] 3D-printed cryomilled poly(ε-caprolactone)/graphene composite scaffolds for bone tissue regeneration
    Dias, Daniela
    Vale, Ana C.
    Cunha, Eunice P. F.
    C. Paiva, Maria
    Reis, Rui L.
    Vaquette, Cedryck
    Alves, Natalia M.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2021, 109 (07) : 961 - 972
  • [26] 3D-printed bioactive scaffolds from nanosilicates and PEOT/PBT for bone tissue engineering
    Carrow, James K.
    Di Luca, Andrea
    Dolatshahi-Pirouz, Alireza
    Moroni, Lorenzo
    Gaharwar, Akhilesh K.
    REGENERATIVE BIOMATERIALS, 2019, 6 (01) : 29 - 37
  • [27] 3D-printed nanocomposite scaffolds with tunable magnesium ionic microenvironment induce in situ bone tissue regeneration
    Shen, Jie
    Wang, Wenhao
    Zhai, Xinyun
    Chen, Bo
    Qiao, Wei
    Li, Wan
    Li, Penghui
    Zhao, Ying
    Meng, Yuan
    Qian, Shi
    Liu, Xuanyong
    Chu, Paul K.
    Yeung, Kelvin W. K.
    APPLIED MATERIALS TODAY, 2019, 16 : 493 - 507
  • [28] Fused Deposition Modeling 3D-Printed Scaffolds for Bone Tissue Engineering Applications: A Review
    Pawan Kumar
    Mohammad Shamim
    Tarmeen Muztaba
    Jyoti Ali
    Haramritpal Singh Bala
    Amit Sidhu
    Annals of Biomedical Engineering, 2024, 52 : 1184 - 1194
  • [29] 3D-printed fish gelatin scaffolds for cartilage tissue engineering
    Maihemuti, Abudureheman
    Zhang, Han
    Lin, Xiang
    Wang, Yangyufan
    Xu, Zhihong
    Zhang, Dagan
    Jiang, Qing
    BIOACTIVE MATERIALS, 2023, 26 : 77 - 87
  • [30] Designing osteogenic interfaces on 3D-Printed thermoplastic bone scaffolds
    Negi, Ankita
    Goswami, Kajal
    Diwan, Himanshi
    Agrawal, Garima
    Murab, Sumit
    MATERIALS TODAY CHEMISTRY, 2025, 45