3D-printed Biphasic Calcium Phosphate Scaffold to augment cytocompatibility evaluation for load-bearing implant applications

Q3 Medicine
K. Prem Ananth , Naidu Dhanpal Jayram , Kandasamy Muthusamy
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Abstract

In this work, we developed and analyzed a biphasic calcium phosphate (BCP) bioceramic for bone regeneration using stereolithography (SLA). The SLA method is a promising additive manufacturing (AM) technique capable of creating BCp parts with high accuracy and efficiency. However, the ceramic suspension used in SLA exhibits significantly higher viscosity and is not environmentally friendly. Therefore, adequate preparation of a suspension with low viscosity and high solid loading is essential. In this paper, we optimized the effects of surfactant doses and solid loading on the BCp slurry, and initially examined the process parameters of photocuring, debinding, and sintering. The utilization of 9 wt % Disperbyk (BYK) with a 40 vol % loading of BCp bioceramics exhibited a reasonably low viscosity of 8.9 mPa·s at a shear level of 46.5 s−1. Functional and structural analyses confirmed that BCp was retained after photocuring and subsequent treatment, which were incorporated into the BYK dispersion. The 3D printed objects with different sintered temperatures, specifically at 1100 °C, 1200 °C, and 1300 °C, were further optimized. Additionally, the surface roughness, porosity, and mechanical properties of BCp green parts were systematically investigated. Most importantly, in vitro analysis of cell attachment, differentiation, and red alizarin analysis could support the application of bone regeneration.

三维打印双相磷酸钙支架用于增强承重植入物应用的细胞相容性评估
在这项研究中,我们利用立体光刻技术(SLA)开发并分析了一种用于骨再生的双相磷酸钙(BCP)生物陶瓷。SLA 方法是一种前景广阔的增材制造(AM)技术,能够高精度、高效率地制造 BCp 零件。然而,SLA 中使用的陶瓷悬浮液粘度明显较高,且不环保。因此,充分制备低粘度、高固含量的悬浮液至关重要。在本文中,我们优化了表面活性剂剂量和固体负载对 BCp 泥浆的影响,并初步考察了光固化、排胶和烧结的工艺参数。在使用 9 wt % 的 Disperbyk (BYK) 和 40 vol % 的 BCp 生物陶瓷时,在 46.5 s-1 的剪切水平下显示出 8.9 mPa-s 的合理低粘度。功能和结构分析证实,经过光固化和后续处理后,BCp 被保留下来,并融入 BYK 分散体中。对不同烧结温度(尤其是 1100 ℃、1200 ℃ 和 1300 ℃)的 3D 打印物体进行了进一步优化。此外,还对 BCp 绿色部件的表面粗糙度、孔隙率和机械性能进行了系统研究。最重要的是,体外细胞附着、分化和红色茜素分析可为骨再生应用提供支持。
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来源期刊
Annals of 3D printed medicine
Annals of 3D printed medicine Medicine and Dentistry (General), Materials Science (General)
CiteScore
4.70
自引率
0.00%
发文量
0
审稿时长
131 days
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