Parametric evaluation of 3D-printed polylactic acid scaffolds: Balancing mechanical and biological performance for bone tissue engineering

被引:0
作者
Akbari, Sadaf [1 ,2 ]
Khazaeinejad, Payam [1 ]
机构
[1] Kingston Univ, Sch Engn, London SW15 3DW, England
[2] Kingston Univ, Sch Life Sci Pharm & Chem, Kingston Upon Thames KT1 2EE, England
关键词
Bone tissue scaffolds; Finite element analysis; Polylactic acid; 3D printing; Porous tissue scaffolds; OF-THE-ART; FINITE-ELEMENT; POROSITY;
D O I
10.1016/j.rineng.2025.104687
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study presents a novel approach to evaluating how individual design parameters affect the mechanical and biological performance of 3D-printed polylactic acid cylindrical bone tissue scaffolds. By systematically varying one parameter at a time (strand thickness, pore size, porosity, or orientation), their individual impacts are precisely assessed. Mechanical properties are incorporated into finite element analysis simulations that mimic femoral loading conditions. Results indicate that scaffolds with a 45 degrees orientation and the smallest strand thickness exhibit the highest deformation, while those with a 60 degrees orientation and the thickest strands show the lowest deformation. Moreover, the highest stress was observed in geometries with 45 degrees orientation, and those with 90 degrees had the lowest stress levels. These results suggest that geometries with 60 degrees and 90 degrees angle provide the sturdiest constructs for load bearing applications in bone tissue engineering. These findings are validated through experimental compression tests. Among the 36 proposed geometries, seven scaffolds display equivalent stress values within the acceptable range for cortical bone compressive strength. The optimized designs align mechanical properties with natural bone, potentially mitigating issues like osteopenia and stress shielding associated with stiffer implants. Contrary to prior recommendations for high porosity (>70%), proposed designs with 40-57% porosity can satisfy both mechanical and biological requirements, suggesting that lower-porosity scaffolds can achieve cellular proliferation rates comparable to those with higher porosity, as supported by existing studies. Future research will include biological tests to validate the biocompatibility of these optimized scaffolds.
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页数:14
相关论文
共 64 条
  • [1] Geometrical and mechanical analysis of polylactic acid and polyvinylidine fluoride scaffolds for bone tissue engineering
    Akbari, Sadaf
    Khazaeinejad, Payam
    [J]. ENGINEERING WITH COMPUTERS, 2023, 39 (06) : 4153 - 4165
  • [2] Bone tissue engineering techniques, advances, and scaffolds for treatment of bone defects
    Alonzo, Matthew
    Primo, Fabian Alvarez
    Kumar, Shweta Anil
    Mudloff, Joel A.
    Dominguez, Erick
    Fregoso, Gisel
    Ortiz, Nick
    Weiss, William M.
    Joddar, Binata
    [J]. CURRENT OPINION IN BIOMEDICAL ENGINEERING, 2021, 17
  • [3] Marine plankton exoskeleton-derived honeycombed hydroxyapatite bone granule for bone tissue engineering
    Baek, Ji Won
    Rezk, Abdelrahman I.
    Kim, Ki Su
    Park, Ho
    Chun, Sungkun
    Kim, Beom-Su
    [J]. MATERIALS & DESIGN, 2022, 224
  • [4] Osteogenesis, hemocompatibility, and foreign body response of polyvinylidene difluoride-based composite reinforced with carbonaceous filler and higher volume of piezoelectric ceramic phase
    Bhaskar, Nitu
    Basu, Bikramjit
    [J]. BIOMATERIALS, 2023, 297
  • [5] Scaffold Fabrication Techniques of Biomaterials for Bone Tissue Engineering: A Critical Review
    Bhushan, Sakchi
    Singh, Sandhya
    Maiti, Tushar Kanti
    Sharma, Chhavi
    Dutt, Dharm
    Sharma, Shubham
    Li, Changhe
    Tag Eldin, Elsayed Mohamed
    [J]. BIOENGINEERING-BASEL, 2022, 9 (12):
  • [6] Finite Element Analysis of Porosity Effects on Mechanical Properties for Tissue Engineering Scaffold
    bin Noordin, Muhammad Azfar
    Saad, Amir Putra bin Md
    Ngadiman, Nor Hasrul Akhmal
    Mustafa, Nur Syahirah
    Yusof, Noordin bin Mohd
    Ma'aram, Azanizawati
    [J]. BIOINTERFACE RESEARCH IN APPLIED CHEMISTRY, 2021, 11 (02): : 8836 - 8843
  • [7] Buschow KHJ., 2001, Encyclopedia of Materials: Science and Technology
  • [8] Butler DL, 2009, TISSUE ENG PART B-RE, V15, P477, DOI [10.1089/ten.teb.2009.0340, 10.1089/ten.TEB.2009.0340]
  • [9] Damiati L., 2024, Front. Med., V11
  • [10] Cylindrical Layered Bone Scaffolds with Anisotropic Mechanical Properties as Potential Drug Delivery Systems
    Di Filippo, Maria Francesca
    Amadori, Sofia
    Casolari, Sonia
    Bigi, Adriana
    Dolci, Luisa Stella
    Panzavolta, Silvia
    [J]. MOLECULES, 2019, 24 (10)