Soares Dos Santos Marco P, Marote Ana, Santos T, Torrão João, Ramos A, Simões José A O, da Cruz E Silva Odete A B, Furlani Edward P, Vieira Sandra I, Ferreira Jorge A F
Centre for Mechanical Technology &Automation (TEMA), University of Aveiro, Aveiro, Portugal.
Department of Mechanical Engineering, University of Aveiro, Aveiro, Portugal.
Sci Rep. 2016 Jul 26;6:30231. doi: 10.1038/srep30231.
Non-drug strategies based on biophysical stimulation have been emphasized for the treatment and prevention of musculoskeletal conditions. However, to date, an effective stimulation system for intracorporeal therapies has not been proposed. This is particularly true for active intramedullary implants that aim to optimize osseointegration. The increasing demand for these implants, particularly for hip and knee replacements, has driven the design of innovative stimulation systems that are effective in bone-implant integration. In this paper, a new cosurface-based capacitive system concept is proposed for the design of implantable devices that deliver controllable and personalized electric field stimuli to target tissues. A prototype architecture of this system was constructed for in vitro tests, and its ability to deliver controllable stimuli was numerically analyzed. Successful results were obtained for osteoblastic proliferation and differentiation in the in vitro tests. This work provides, for the first time, a design of a stimulation system that can be embedded in active implantable devices for controllable bone-implant integration and regeneration. The proposed cosurface design holds potential for the implementation of novel and innovative personalized stimulatory therapies based on the delivery of electric fields to bone cells.
基于生物物理刺激的非药物策略已被强调用于肌肉骨骼疾病的治疗和预防。然而,迄今为止,尚未提出一种用于体内治疗的有效刺激系统。对于旨在优化骨整合的有源髓内植入物来说尤其如此。对这些植入物的需求不断增加,特别是对于髋关节和膝关节置换术,这推动了有效促进骨-植入物整合的创新刺激系统的设计。本文提出了一种基于共表面的新型电容系统概念,用于设计可植入设备,该设备能够向目标组织提供可控的个性化电场刺激。构建了该系统的原型架构用于体外测试,并对其提供可控刺激的能力进行了数值分析。在体外测试中,成骨细胞增殖和分化取得了成功结果。这项工作首次提供了一种刺激系统的设计,该系统可嵌入有源可植入设备中,用于可控的骨-植入物整合和再生。所提出的共表面设计具有基于向骨细胞传递电场实施新型和创新个性化刺激疗法的潜力。