Investigation of 3D Printed Bioresorbable Vascular Scaffold Crimping Behavior

被引:0
|
作者
Collins, Caralyn P. [1 ,2 ]
Leng, Junqing [1 ]
Fu, Rao [2 ,3 ]
Ding, Yonghui [2 ,3 ]
Ameer, Guillermo [2 ,3 ]
Sun, Cheng [1 ,2 ]
机构
[1] Northwestern Univ, Dept Mech Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA
[2] Northwestern Univ, Ctr Adv Regenerat Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA
[3] Northwestern Univ, Dept Biomed Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA
关键词
additive manufacturing; bioresorbable scaffold; finite element simulation; radial forces; vascular scaffold; IMPLANTATION;
D O I
10.1002/admt.202301698
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The rise in additive manufacturing (AM) offers myriad opportunities for 3D printed polymeric vascular scaffolds, such as customization and on-the-spot manufacturing, in vivo biodegradation, incorporation of drugs to prevent restenosis, and visibility under X-ray. To maximize these benefits, informed scaffold design is critical. Polymeric bioresorbable vascular scaffolds (BVS) must undergo significant deformation prior to implantation in a diameter-reduction process known as crimping that enables minimally invasive surgery. Understanding the behavior of vascular scaffolds in this step provides twofold benefits: first, it ensures the BVS is able to accommodate stresses occurring during this process to prevent failure, and further, it provides information on the radial strength of the BVS, a key metric to understanding its post-implant performance in the artery. To capitalize on the fast manufacturing speed AM provides, a low time cost solution for understanding scaffold performance during this step is necessary. Through simulation of the BVS crimping process in ABAQUS using experimentally obtained bulk material properties, a qualitative analysis tool is developed that is capable of accurately comparing relative performance trends of varying BVS designs during crimping in a fraction of the time of experimental testing, thereby assisting in the integration of informed design into the additive manufacturing process. Additive manufacturing advances allow for custom, 3D printed vascular scaffolds with features like biodegradation and drug delivery. Informed design is essential for leveraging these advantages, particularly for the crimping process, which involves significant plastic deformation. A tool is developed for rapidly predicting relative design performance of varying scaffolds during crimping, giving qualitative information beyond what is experimentally accessible. image
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Combining a Vascular Bundle and 3D Printed Scaffold with BMP-2 Improves Bone Repair and Angiogenesis
    Kawai, Toshiyuki
    Pan, Chi-Chun
    Okuzu, Yaichiro
    Shimizu, Takayoshi
    Stahl, Alexander M.
    Matsuda, Shuich
    Maloney, William J.
    Yang, Yunzhi P.
    TISSUE ENGINEERING PART A, 2021, 27 (23-24) : 1517 - 1525
  • [22] Icariin-releasing 3D printed scaffold for bone regeneration
    Zou, Lin
    Hu, Le
    Pan, Panpan
    Tarafder, Solaiman
    Du, Mingzu
    Geng, Yusheng
    Xu, Gan
    Chen, Li
    Chen, Jingdi
    Lee, Chang H.
    COMPOSITES PART B-ENGINEERING, 2022, 232
  • [23] Salvage of Severe Foot and Ankle Trauma With a 3D Printed Scaffold
    Hamid, Kamran S.
    Parekh, Selene G.
    Adams, Samuel B.
    FOOT & ANKLE INTERNATIONAL, 2016, 37 (04) : 433 - 439
  • [24] 3D printed scaffold for repairing bone defects in apical periodontitis
    Cong Li
    Xiaoyin Xu
    Jing Gao
    Xiaoyan Zhang
    Yao Chen
    Ruixin Li
    Jing Shen
    BMC Oral Health, 22
  • [25] 3D printed scaffold for repairing bone defects in apical periodontitis
    Li, Cong
    Xu, Xiaoyin
    Gao, Jing
    Zhang, Xiaoyan
    Chen, Yao
    Li, Ruixin
    Shen, Jing
    BMC ORAL HEALTH, 2022, 22 (01)
  • [26] 3D Printed Scaffold Architecture Influences Ovarian Follicle Function
    Laronda, M. M.
    Rutz, A. L.
    Xiao, S.
    Whelan, K. A.
    Woodruff, T. K.
    Shah, R. N.
    TISSUE ENGINEERING PART A, 2015, 21 : S30 - S30
  • [27] 3D printed PCL/SrHA scaffold for enhanced bone regeneration
    Liu, Dinghua
    Nie, Wei
    Li, Dejian
    Wang, Weizhong
    Zheng, Lixia
    Zhang, Jingtian
    Zhang, Jiulong
    Peng, Chen
    Mo, Xiumei
    He, Chuanglong
    CHEMICAL ENGINEERING JOURNAL, 2019, 362 : 269 - 279
  • [28] Development of 3D printed fibrillar collagen scaffold for tissue engineering
    Aden Díaz Nocera
    Romina Comín
    Nancy Alicia Salvatierra
    Mariana Paula Cid
    Biomedical Microdevices, 2018, 20
  • [29] Development of 3D printed fibrillar collagen scaffold for tissue engineering
    Diaz Nocera, Aden
    Comin, Romina
    Alicia Salvatierra, Nancy
    Paula Cid, Mariana
    BIOMEDICAL MICRODEVICES, 2018, 20 (02)
  • [30] 3D Printed Integrated Bionic Oxygenated Scaffold for Bone Regeneration
    Wang, Yihan
    Xie, Changnan
    Zhang, Zhiming
    Liu, Haining
    Xu, Haixia
    Peng, Ziyue
    Liu, Chun
    Li, Jianjun
    Wang, Chengqiang
    Xu, Tao
    Zhu, Lixin
    ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (26) : 29506 - 29520