Physicochemical, mechanical, dielectric, and biological properties of sintered hydroxyapatite/barium titanate nanocomposites for bone regeneration. 2023

Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
Department of Physics and Astronomy, National Institute of Technology Rourkela, Odisha 769008, India.

Bone implants fabricated using nanocomposites containing hydroxyapatite (HA) and barium titanate (BT) show osteoconductive, osteoinductive, osteointegration, and piezoelectricity properties for bone regeneration applications. In our present study, HA and BT nanopowders were synthesized using high-energy ball-milling-assisted solid-state reaction with precursors of calcium carbonate and ammonium dihydrogen phosphate, and barium carbonate and titanium oxide powder mixtures, respectively. Hexagonal HA and tetragonal BT phases were formed after calcination at 700 and 1000 °C, respectively. Subsequently, hydroxyapatite/barium titanate (HA/BT) nanocomposites with different weight percentages of HA and BT were prepared by ball-milling, then compacted and sintered at two different temperatures to endow these bioceramics with better mechanical, dielectric, and biological properties for bone regeneration. Microstructure, crystal phases, and molecular structure characterizations of these sintered HA/BT nanocomposite compacts (SHBNCs) were performed using field-emission scanning electron microscopy, x-ray diffraction, and Fourier-transform infrared spectroscopy, respectively. Bulk density was evaluated using the Archimedes method. HA/BT nanocomposites with increased BT content showed enhanced dielectric properties, and the dielectric constant (ϵ) value for 5HA/95BT was ∼182 at 100 Hz. Mechanical properties such as Vicker's hardness, fracture toughness, yield strength, and diametral tensile strength were also investigated. The hemolysis assay of SHBNCs exhibited hemocompatibility. The effect of these SHBNCs as implants on thein vitrocytocompatibility and cell viability of MG-63 osteoblast-like cells was assessed by MTT assay and live/dead staining, respectively. 15HA/85BT showed increased metabolic activity with a higher number of live cells than BT after the culture period. Overall, the SHBNCs can be used as orthopedic implants for bone regeneration applications.

UI MeSH Term Description Entries
D001842 Bone and Bones A specialized CONNECTIVE TISSUE that is the main constituent of the SKELETON. The principal cellular component of bone is comprised of OSTEOBLASTS; OSTEOCYTES; and OSTEOCLASTS, while FIBRILLAR COLLAGENS and hydroxyapatite crystals form the BONE MATRIX. Bone Tissue,Bone and Bone,Bone,Bones,Bones and Bone,Bones and Bone Tissue,Bony Apophyses,Bony Apophysis,Condyle,Apophyses, Bony,Apophysis, Bony,Bone Tissues,Condyles,Tissue, Bone,Tissues, Bone
D001861 Bone Regeneration Renewal or repair of lost bone tissue. It excludes BONY CALLUS formed after BONE FRACTURES but not yet replaced by hard bone. Osteoconduction,Bone Regenerations,Regeneration, Bone,Regenerations, Bone
D001464 Barium An element of the alkaline earth group of metals. It has an atomic symbol Ba, atomic number 56, and atomic weight 138. All of its acid-soluble salts are poisonous.
D053761 Nanocomposites Nanometer-scale composite structures composed of organic molecules intimately incorporated with inorganic molecules. (Glossary of Biotechnology and Nanobiotechology Terms, 4th ed) Nanocomposite
D017886 Durapatite The mineral component of bones and teeth; it has been used therapeutically as a prosthetic aid and in the prevention and treatment of osteoporosis. Calcium Hydroxyapatite,Hydroxyapatite,Hydroxylapatite,Alveograf,Calcitite,Interpore-200,Interpore-500,Osprovit,Ossein-Hydroxyapatite Compound,Ossopan,Osteogen,Periograf,Hydroxyapatite, Calcium,Interpore 200,Interpore 500,Interpore200,Interpore500,Ossein Hydroxyapatite Compound

Related Publications

Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
April 2014, Nanoscale,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
February 2016, ACS applied materials & interfaces,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
October 2019, Radiation protection dosimetry,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
July 1947, Nature,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
April 2020, Polymers,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
September 1990, Kokubyo Gakkai zasshi. The Journal of the Stomatological Society, Japan,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
August 2018, Materials (Basel, Switzerland),
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
January 2011, International journal of biomaterials,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
January 2009, Bio-medical materials and engineering,
Sujata Swain, and Rakesh Bhaskar, and Kannan Badri Narayanan, and Mukesh Kumar Gupta, and Sonia Sharma, and Sudip Dasgupta, and Sung Soo Han, and Pawan Kumar
April 2022, International journal of molecular sciences,
Copied contents to your clipboard!