Direct 3D Printing of Seashell Precursor toward Engineering a Multiphasic Calcium Phosphate Bone Graft

被引:8
作者
Dadhich, Prabhash [1 ]
Srivas, Pavan Kumar [1 ]
Das, Bodhisatwa [1 ]
Pal, Pallabi [1 ]
Dutta, Joy [1 ]
Maity, Pritiprasanna [1 ]
Ray, Preetam Guha [1 ]
Roy, Sabyasachi [2 ]
Das, Subrata K. [1 ]
Dhara, Santanu [1 ]
机构
[1] Indian Inst Technol Kharagpur, Sch Med Sci & Technol SMST, Biomat & Tissue Engn Lab, Kharagpur 721302, W Bengal, India
[2] Midnapore Med Coll & Hosp, Dept Gynaecol, Midnapore 721101, W Bengal, India
关键词
seashells; multiphasic calcium phosphate; direct 3D printing; multi-scalar hierarchal porosity; stem cell differentiation; IN-VIVO; HYDROXYAPATITE; SCAFFOLDS; OSTEOINDUCTION; SHELL; BIOMATERIALS; STIMULATION; BIOCERAMICS; ADSORPTION; CONVERSION;
D O I
10.1021/acsbiomaterials.1c00303
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Multiphasic calcium phosphate (Ca-P) has widely been explored for bone graft replacement. This study represents a simple method of developing osteoinductive scaffolds by direct printing of seashell resources. The process demonstrates a coagulation-assisted extrusion-based three-dimensional (3D) printing process for rapid fabrication of multiphasic calcium phosphate-incorporated 3D scaffolds. These scaffolds demonstrated an interconnected open porous architecture with improved compressive strength and higher surface area. Multiphasic calcium phosphate (Ca-P) and hydroxyapatite present in the multi-scalar naturally resourced scaffold displayed differential protein adsorption, thus facilitating cell adhesion, migration, and differentiation, resulting in enhanced deposition of the extracellular matrix. The microstructural and physicochemical attributes of the scaffolds also lead to enhanced stem cell differentiation as witnessed from gene and protein expression analysis. Furthermore, the histological study of subcutaneous implantation evidently portrays promising biocompatibility without foreign body reaction. Neo-tissue in-growth was manifested with abundant blood vessels, thus indicative of excellent vascularization. Notably, cartilaginous and proteoglycan-rich tissue deposition indicated ectopic bone formation via an endochondral ossification pathway. The hierarchical interconnected porous architectural tribology accompanied with multiphasic calcium phosphate composition manifests its successful implication in enhancing stem cell differentiation and promoting excellent tissue in-growth, thus making it a plausible alternative in bone tissue engineering applications.
引用
收藏
页码:3806 / 3820
页数:15
相关论文
共 50 条
[41]   Hydroxyapatite scaffolds for bone tissue engineering made by 3D printing [J].
Barbara Leukers ;
Hülya Gülkan ;
Stephan H. Irsen ;
Stefan Milz ;
Carsten Tille ;
Matthias Schieker ;
Hermann Seitz .
Journal of Materials Science: Materials in Medicine, 2005, 16 :1121-1124
[42]   Extrusion 3D printing advances for craniomaxillofacial bone tissue engineering [J].
Murali, Athira ;
Parameswaran, Ramesh .
POLYMER-PLASTICS TECHNOLOGY AND MATERIALS, 2024, 63 (07) :889-912
[43]   Synthesis of Calcium Phosphate Powders in Nonaqueous Media for Stereolithography 3D Printing [J].
D. S. Larionov ;
M. A. Kuzina ;
P. V. Evdokimov ;
A. V. Garshev ;
N. K. Orlov ;
V. I. Putlyaev .
Russian Journal of Inorganic Chemistry, 2020, 65 :312-322
[44]   Calcium phosphate/microgel composites for 3D powderbed printing of ceramic materials [J].
Birkholz, Mandy-Nicole ;
Agrawal, Garima ;
Bergmann, Christian ;
Schroeder, Ricarda ;
Lechner, Sebastian J. ;
Pich, Andrij ;
Fischer, Horst .
BIOMEDICAL ENGINEERING-BIOMEDIZINISCHE TECHNIK, 2016, 61 (03) :267-279
[45]   A Simple Approach for an Eggshell-Based 3D-Printed Osteoinductive Multiphasic Calcium Phosphate Scaffold [J].
Dadhich, Prabhash ;
Das, Bodhisatwa ;
Pal, Pallabi ;
Srivas, Pavan K. ;
Dutta, Joy ;
Ray, Sabyasachi ;
Dhara, Santanu .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (19) :11910-11924
[46]   3D Printing for Tissue Engineering [J].
Richards, Dylan Jack ;
Tan, Yu ;
Jia, Jia ;
Yao, Hai ;
Mei, Ying .
ISRAEL JOURNAL OF CHEMISTRY, 2013, 53 (9-10) :805-814
[47]   3D Printing of Calcium Phosphate/Calcium Sulfate with Alginate/Cellulose-Based Scaffolds for Bone Regeneration: Multilayer Fabrication and Characterization [J].
Wattanaanek, Nattanan ;
Suttapreyasri, Srisurang ;
Samruajbenjakun, Bancha .
JOURNAL OF FUNCTIONAL BIOMATERIALS, 2022, 13 (02)
[48]   Hydroxyapatite based for bone tissue engineering: innovation and new insights in 3D printing technology [J].
Fendi, Fendi ;
Abdullah, Bualkar ;
Suryani, Sri ;
Raya, Indah ;
Tahir, Dahlang ;
Iswahyudi, Iswahyudi .
POLYMER BULLETIN, 2024, 81 (02) :1097-1116
[49]   Characterization approach on the extrusion process of bioceramics for the 3D printing of bone tissue engineering scaffolds [J].
Zhong, Gaoyan ;
Vaezi, Mohammad ;
Liu, Ping ;
Pan, Lin ;
Yang, Shoufeng .
CERAMICS INTERNATIONAL, 2017, 43 (16) :13860-13868
[50]   3D printing of PCL-ceramic composite scaffolds for bone tissue engineering applications [J].
Parupelli, Santosh Kumar ;
Saudi, Sheikh ;
Bhattarai, Narayan ;
Desai, Salil .
INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (06) :539-551