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Updated: Sep 12, 2025

Ceramic Omnidirectional Bioprinting in Cell-Laden Suspensions for the Generation of Bone Analogs
Published on: August 8, 2022
Design, fabrication, andin vitroevaluation of a 3D printed, bio-absorbable PLA tibia bone implant with a novel
Devika Banothu1, Pankaj Kumar1, Syed Gazanfar Mustafa Ali1
1Department of Mechanical Engineering, SR University, Warangal, India.
Abstract:
Polymeric bone implants provide distinct benefits over their metallic counterparts because of their degradability, eliminating the need for surgical removal, especially when placed in complex areas, such as the craniofacial region. This technology is particularly beneficial for pediatric craniofacial fracture treatment. An ideal degradable implant degrades at a pace that matches bone development while maintaining structural integrity. Currently, polylactic acid (PLA) and polylactic-co-glycolic acid (PLGA) are the primary materials used for these implants, although their degradation takes over a year, posing a prolonged biohazard risk to the bone tissue. Thus, this study focused on achieving a faster degradation rate while maintaining the implant strength. The implant, designed using ANSYS SpaceClaim software, was 60 mm long and 2 mm thick, with three 4.5 mm holes. It also includes a centrally located lattice structure to bear any excessive load on the bone and promote suitable bone tissue formation. The mechanical and biomedical properties of the implants were confirmed. The surface roughness was suitable for tissue growth, the hardness managed sudden loads, and the biocompatibility was justified by the degradation rate and potential of hydrogen (pH) observation inin vitrodegradation in simulated body fluid (SBF), underlining the advantages of biodegradable materials over traditional alloys, such as 316 L stainless steel, cobalt-chromium alloys, titanium alloys, and nickel-titanium alloys.

