Literature DB >> 21343634

Fabrication of a biomimetic elastic intervertebral disk scaffold using additive manufacturing.

Benjamin R Whatley1, Jonathan Kuo, Cijun Shuai, Brooke J Damon, Xuejun Wen.   

Abstract

A custom-designed three-dimensional additive manufacturing device was developed to fabricate scaffolds for intervertebral disk (IVD) regeneration. This technique integrated a computer with a device capable of 3D movement allowing for precise motion and control over the polymer scaffold resolution. IVD scaffold structures were designed using computer-aided design to resemble the natural IVD structure. Degradable polyurethane (PU) was used as an elastic scaffold construct to mimic the elastic nature of the native IVD tissue and was deposited at a controlled rate using ultra-fine micropipettes connected to a syringe pump. The elastic PU was extruded directly onto a collecting substrate placed on a freezing stage. The three-dimensional movement of the computer-controlled device combined with the freezing stage enabled precise control of polymer deposition using extrusion. The addition of the freezing stage increased the polymer solution viscosity and hardened the polymer solution as it was extruded out of the micropipette tip. This technique created scaffolds with excellent control over macro- and micro-structure to influence cell behavior, specifically for cell adhesion, proliferation, and alignment. Concentric lamellae were printed at a high resolution to mimic the native shape and structure of the IVD. Seeded cells aligned along the concentric lamellae and acquired cell morphology similar to native tissue in the outer portion of the IVD. The fabricated scaffolds exhibited elastic behavior during compressive and shear testing, proving that the scaffolds could support loads with proper fatigue resistance without permanent deformation. Additionally, the mechanical properties of the scaffolds were comparable to those of native IVD tissue.

Entities:  

Mesh:

Substances:

Year:  2011        PMID: 21343634     DOI: 10.1088/1758-5082/3/1/015004

Source DB:  PubMed          Journal:  Biofabrication        ISSN: 1758-5082            Impact factor:   9.954


  13 in total

1.  Design of mulitlevel OLF approach ("V"-shaped decompressive laminoplasty) based on 3D printing technology.

Authors:  Qinjie Ling; Erxing He; Hanbin Ouyang; Jing Guo; Zhixun Yin; Wenhua Huang
Journal:  Eur Spine J       Date:  2017-07-27       Impact factor: 3.134

Review 2.  Current status of 3D printing in spine surgery.

Authors:  Bhavuk Garg; Nishank Mehta
Journal:  J Clin Orthop Trauma       Date:  2018-08-07

Review 3.  Photopolymerizable Biomaterials and Light-Based 3D Printing Strategies for Biomedical Applications.

Authors:  Claire Yu; Jacob Schimelman; Pengrui Wang; Kathleen L Miller; Xuanyi Ma; Shangting You; Jiaao Guan; Bingjie Sun; Wei Zhu; Shaochen Chen
Journal:  Chem Rev       Date:  2020-04-23       Impact factor: 60.622

4.  Three-Dimensional-Printed Flexible Scaffolds Have Tunable Biomimetic Mechanical Properties for Intervertebral Disc Tissue Engineering.

Authors:  Samantha L Marshall; Timothy D Jacobsen; Erik Emsbo; Archana Murali; Kevin Anton; Jessica Z Liu; Helen H Lu; Nadeen O Chahine
Journal:  ACS Biomater Sci Eng       Date:  2021-11-29

5.  Biomolecule gradient in micropatterned nanofibrous scaffold for spatiotemporal release.

Authors:  Walter Bonani; Antonella Motta; Claudio Migliaresi; Wei Tan
Journal:  Langmuir       Date:  2012-09-14       Impact factor: 3.882

6.  The Barrow Biomimetic Spine: effect of a 3-dimensional-printed spinal osteotomy model on performance of spinal osteotomies by medical students and interns.

Authors:  Michael A Bohl; James J Zhou; Michael A Mooney; Garrett J Repp; Claudio Cavallo; Peter Nakaji; Steve W Chang; Jay D Turner; U Kumar Kakarla
Journal:  J Spine Surg       Date:  2019-03

Review 7.  3D printing in neurosurgery: A systematic review.

Authors:  Michael Randazzo; Jared M Pisapia; Nickpreet Singh; Jayesh P Thawani
Journal:  Surg Neurol Int       Date:  2016-11-14

8.  A 3D-Printed Sensor for Monitoring Biosignals in Small Animals.

Authors:  Sung-Joon Cho; Donghak Byun; Tai-Seung Nam; Seok-Yong Choi; Byung-Geun Lee; Myeong-Kyu Kim; Sohee Kim
Journal:  J Healthc Eng       Date:  2017-10-25       Impact factor: 2.682

9.  In vitro evaluation of 3D printed polycaprolactone scaffolds with angle-ply architecture for annulus fibrosus tissue engineering.

Authors:  T R Christiani; E Baroncini; J Stanzione; A J Vernengo
Journal:  Regen Biomater       Date:  2019-04-22

10.  Development of a Patient-specific Guide for High Cervical Spine Fixation.

Authors:  Felipe de Negreiros Nanni; Emiliano Neves Vialle; José Aguiomar Foggiattob; Kayo Winiccius Samuel Neves E Silva; Heraldo de Oliveira Mello Neto
Journal:  Rev Bras Ortop (Sao Paulo)       Date:  2019-03-01
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.