Highly interconnected porous nanocomposite scaffolds -manufactured by table-top 3D printing

ثبت نشده
چکیده

With the development and accessibility of commercial three-dimensional (3D) printers, the capability of manufacturing highly interconnected and porous 3D scaffolds holds signifi cant interest and great potential in the biomedical fi eld. Unfortunately, current table-top printing modalities are largely predicated on their more expensive commercial counterparts leveraging proven printing materials. Polylactic acid (PLA) is commercially used as a soluble support material, wherein intricate and complex parts requiring support during the build process are necessary. Based on this principle, we have developed a technique wherein highly porous and interconnected biocompatible hydrogels were readily manufactured via investment casting and shaped for use as an implantable scaffold. In addition, the current technique allows for the incorporation of bioactive nanomaterials for increased mechanical strength and enhanced biocompatibility. Therefore, for this study, a table-top fused deposition modeling 3D printer (Solidoodle3) was used to fabricate all PLA molds. A 35 mm x 35 mm x 5 mm cube with a 1.2-mm lip was designed in Rhinoceros3D® computer-aided drafting software. The CAD fi les were processed with varying infi ll densities of 0.2, 0.4, and 0.6, respectively, and subsequently 3D printed. Functionalized poly(ethylene glycol) diacrylate (PEG-Da) with photocrosslinkable unsaturated alkenes (MW = 530) in nonfunctionalized poly(ethylene glycol) (PEG, MW = 300) was used as a test material in the presence of a photoinitiator exhibiting excitation in the ultraviolet (UV) range. The PEG:PEG-Da mixture was cast upon the PLA molds and UV cured for 2 min on each side. Once fully crosslinked, the entire construct was ultrasonicated in tetrahydrofuran for 3 h at 40°C to allow for complete dissolution of the PLA mold. The highly porous PEG:PEG-Da scaffold was subsequently swelled in ultrapure water overnight to remove uncrosslinked PEG. Investment casting is a highly controlled method for the manufacture of 3D constructs requiring good precision and accuracy of internal porosity. To our knowledge, this is the fi rst attempt at employing this technique through the combination of a table-top 3D printer and photocrosslinkable hydrogels. Initial analyses of the fabricated PEG-Da scaffolds illustrate excellent correlation with regards to the processed CAD model with high reproducibility and control of interconnected porous structures. The fabricated mats can be readily shaped and molded for a myriad of applications due to the fl exibility in design and availability of functionalized PEG-based hydrogels. The current method is being employed for the manufacture of biphasic scaffolds for osteochondral defects. Based on the initial studies presented here, the extremely fl exible methodology developed serves to further extend the application of table-top 3D printing technologies to manufacture 3D hydrogel-based complex scaffolds.

برای دانلود متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

ثبت نام

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

منابع مشابه

Improved Human Bone Marrow Mesenchymal Stem Cell Osteogenesis in 3D Bioprinted Tissue Scaffolds with Low Intensity Pulsed Ultrasound Stimulation

3D printing and ultrasound techniques are showing great promise in the evolution of human musculoskeletal tissue repair and regeneration medicine. The uniqueness of the present study was to combine low intensity pulsed ultrasound (LIPUS) and advanced 3D printing techniques to synergistically improve growth and osteogenic differentiation of human mesenchymal stem cells (MSC). Specifically, polye...

متن کامل

Preparation and characterization of cockle shell aragonite nanocomposite porous 3D scaffolds for bone repair

The demands for applicable tissue-engineered scaffolds that can be used to repair load-bearing segmental bone defects (SBDs) is vital and in increasing demand. In this study, seven different combinations of 3 dimensional (3D) novel nanocomposite porous structured scaffolds were fabricated to rebuild SBDs using an extraordinary blend of cockle shells (CaCo3) nanoparticles (CCN), gelatin, dextran...

متن کامل

A novel three-dimensional printing of electroconductive scaffolds for bone cancer therapy application

Objective(s): Tissue engineering aims to achieve a tissue, which has highly interconnected porous microstructure concurrent with appropriate mechanical and biological properties. Materials and Methods: Therefore, the microstructure scaffolds are of great importance in this field. In the present study, an electroconductive poly-lactic acid (EC-PLA) filament used to fabricate a porous bone ...

متن کامل

Three-dimensional printing of porous ceramic scaffolds for bone tissue engineering.

This article reports a new process chain for custom-made three-dimensional (3D) porous ceramic scaffolds for bone replacement with fully interconnected channel network for the repair of osseous defects from trauma or disease. Rapid prototyping and especially 3D printing is well suited to generate complex-shaped porous ceramic matrices directly from powder materials. Anatomical information obtai...

متن کامل

Selective Laser Sintered Poly(L-Lactide)/Carbonated Hydroxyapatite Nanocomposite Scaffolds: A Bottom-up Approach

The main objective of this research is to study the feasibility of using the selective laser sintering (SLS) technology to fabricate 3D porous scaffolds from poly(L-lactide) (PLLA) and poly(L-lactide)/carbonated hydroxyapatite (PLLA/CHAp) nanocomposite for bone tissue engineering applications. There are great demands for tissue engineering (TE) and ideal tissue engineering scaffolds should poss...

متن کامل

ذخیره در منابع من


  با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید

برای دانلود متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

ثبت نام

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

عنوان ژورنال:

دوره   شماره 

صفحات  -

تاریخ انتشار 2014