Process-Structure-Quality Relationships of Three-Dimensional Printed Poly(Caprolactone)-Hydroxyapatite Scaffolds

被引:0
|
作者
Gerdes, Sam [1 ]
Mostafavi, Azadeh [1 ]
Ramesh, Srikanthan [4 ]
Memic, Adnan [1 ,5 ,6 ]
Rivero, Iris V. [3 ,4 ]
Rao, Prahalada [2 ]
Tamayol, Ali [5 ]
机构
[1] Univ Nebraska, Dept Mech & Mat Engn, Lincoln, NE 68588 USA
[2] Univ Nebraska, Dept Mech & Mat Engn, 900 N 16th St,NH W342, Lincoln, NE 68588 USA
[3] Univ Nebraska, Dept Mech & Mat Engn, 900 N 16th St,SEC 233, Lincoln, NE 68588 USA
[4] Rochester Inst Technol, Dept Ind & Syst Engn, 81 Lomb Mem Dr,Room GLE 1513, Rochester, NY 14623 USA
[5] Univ Connecticut, Dept Biomed Engn, Farmington, CT USA
[6] King Abdulaziz Univ, Ctr Nanotechnol, Jeddah, Saudi Arabia
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
3D printing; bone tissue scaffolds; poly(caprolactone) (PCL)-hydroxyapatite (HAp) composites; in situ imaging; osteoinductivity; COMPOSITE SCAFFOLDS; HYDROXYAPATITE;
D O I
10.1089/ten.tea.2019.0237
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Bone defects are common and, in many cases, challenging to treat. Tissue engineering is an interdisciplinary approach with promising potential for treating bone defects. Within tissue engineering, three-dimensional (3D) printing strategies have emerged as potent tools for scaffold fabrication. However, reproducibility and quality control are critical aspects limiting the translation of 3D printed scaffolds to clinical use, which remain to be addressed. To elucidate the factors that yield to the generation of defects in bioprinting and to achieve reproducible biomaterial printing, the objective of this article is to frame a systematic approach for optimizing and validating 3D printing of poly(caprolactone) (PCL)-hydroxyapatite (HAp) composite scaffolds. We delineate the effect of PCL-to-HAp ratio, print velocity, print temperature, and extrusion pressure on the architectural and mechanical properties of the 3D printed scaffold. Furthermore, we present an in situ image-based monitoring approach to quantify key quality-related aspects of constructs, such as the ability to deposit material consistently and print elementary shapes with fewer flaws. Our results show that small defects generated during the printing process have a significant role in lowering the mechanical properties of 3D printed polymeric scaffolds. In addition, the in vitro osteoinductivity of the fabricated scaffolds is demonstrated. Impact statement Identifying quality control measures is essential in the translation of three-dimensional (3D) printed scaffolds into clinical practice. In this article, we highlighted the importance of selected printing parameters on the quality of the 3D printed scaffolds. We also demonstrated that flaws, such as voids, significantly lower the mechanical properties (compressive modulus) of 3D printed polymeric scaffolds.
引用
收藏
页码:279 / 291
页数:13
相关论文
共 50 条
  • [31] Three-Dimensional Printed Multiphase Scaffolds for Regeneration of Periodontium Complex
    Lee, Chang H.
    Hajibandeh, Jeffrey
    Suzuki, Takahiro
    Fan, Andrew
    Shang, Peng
    Mao, Jeremy J.
    TISSUE ENGINEERING PART A, 2014, 20 (7-8) : 1342 - 1351
  • [32] Osteoblast growth and bone-healing response to three-dimensional poly(e-caprolactone fumarate) scaffolds
    Kim, Jinku
    Sharma, Aditi
    Runge, Brett
    Waters, Heather
    Doll, Bruce
    McBride, Sean
    Alvarez, Pedro
    Dadsetan, Mahrokh
    Yaszemski, Michael J.
    Hollinger, Jeffrey O.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 (05) : 404 - 413
  • [33] Three-dimensional printed poly(L-lactide) copolymers with nano-hydroxyapatite scaffolds for enhanced osteogenic and regenerative activities in bone tissue engineering
    Fan, Tiantang
    Zhang, Yujue
    Meng, Xiao
    Qu, Yangcui
    Wang, Ying
    Liu, Qing
    Wang, Guannan
    COLLOID AND INTERFACE SCIENCE COMMUNICATIONS, 2022, 51
  • [34] 3D-Printed Poly(ε-Caprolactone)/Hydroxyapatite Scaffolds Modified with Alkaline Hydrolysis Enhance Osteogenesis In Vitro
    Park, Sangbae
    Kim, Jae Eun
    Han, Jinsub
    Jeong, Seung
    Lim, Jae Woon
    Lee, Myung Chul
    Son, Hyunmok
    Kim, Hong Bae
    Choung, Yun-Hoon
    Seonwoo, Hoon
    Chung, Jong Hoon
    Jang, Kyoung-Je
    POLYMERS, 2021, 13 (02) : 1 - 11
  • [35] Three dimensionally printed pearl powder/poly-caprolactone composite scaffolds for bone regeneration
    Zhang, Xu
    Du, Xiaoyu
    Li, Dejian
    Ao, Rongguang
    Yu, Bin
    Yu, Baoqing
    JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2018, 29 (14) : 1686 - 1700
  • [36] Fabrication, structure and properties of three-dimensional biodegradable poly(glycerol sebacate urethane) scaffolds
    Frydrych, Martin
    Chen, Biqiong
    POLYMER, 2017, 122 : 159 - 168
  • [37] Surface-Modified Hydroxyapatite Nanoparticle-Reinforced Polylactides for Three-Dimensional Printed Bone Tissue Engineering Scaffolds
    Yang, Wei-Feng
    Long, Li
    Wang, Renxian
    Chen, Dafu
    Duan, Shun
    Xu, Fu-Jian
    JOURNAL OF BIOMEDICAL NANOTECHNOLOGY, 2018, 14 (02) : 294 - 303
  • [38] Characterization of three-dimensional printed thermal-stimulus polylactic acid-hydroxyapatite-based shape memory scaffolds
    Singh, Gurminder
    Singh, Sunpreet
    Prakash, Chander
    Kumar, Raman
    Kumar, Ranvijay
    Ramakrishna, Seeram
    POLYMER COMPOSITES, 2020, 41 (09) : 3871 - 3891
  • [39] Addition of MgO nanoparticles and plasma surface treatment of three-dimensional printed polycaprolactone/hydroxyapatite scaffolds for improving bone regeneration
    Roh, Hee-Sang
    Lee, Chang-Min
    Hwang, Young-Hyoun
    Kook, Min-Suk
    Yang, Seong-Won
    Lee, Donghun
    Kim, Byung-Hoon
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2017, 74 : 525 - 535
  • [40] Advanced three-dimensional printed scaffolds loaded with ibuprofen for periodontitis management
    Liasi, Georgia
    Theodoridis, Konstantinos
    Arampatzis, Athanasios
    Kyrilas, Evangelos
    Kampasakali, Elli
    Tsivintzelis, Ioannis
    Tsalikis, Lazaros
    Barmpalexis, Panagiotis
    Christofilos, Dimitrios
    Assimopoulou, Andreana
    PLANTA MEDICA, 2023, 89 (14) : 1427 - 1428