Devaraj Harish, Aw Kean C, McDaid Andrew J
Department of Mechanical Engineering, Faculty of Engineering, The University of Auckland, Auckland, New Zealand.
Biomed Eng Lett. 2019 Oct 3;10(1):43-61. doi: 10.1007/s13534-019-00132-w. eCollection 2020 Feb.
The fundamental goal of prosthesis is to achieve optimal levels of performance and enhance the quality of life of amputees. Socket type prostheses have been widely employed despite their known drawbacks. More recently, the advent of osseointegrated prostheses have demonstrated potential to be a better alternative to socket prosthesis eliminating most of the drawbacks of the latter. However, both socket and osseointegrated limb prostheses are prone to superficial infections during use. Infection prone skin lesions from frictional rubbing of the socket against the soft tissue are a known problem of socket type prosthesis. Osseointegration, on the other hand, results in an open wound at the implant-stump interface. The integration of infection sensors in prostheses to detect and prevent infections is proposed to enhance quality of life of amputees. Pathogenic volatiles having been identified to be a potent stimulus, this paper reviews the current techniques in the field of infection sensing, specifically focusing on identifying portable and flexible sensors with potential to be integrated into prosthesis designs. Various sensor architectures including but not limited to sensors fabricated from conducting polymers, carbon polymer composites, metal oxide semiconductors, metal organic frameworks, hydrogels and synthetic oligomers are reviewed. The challenges and their potential integration pathways that can enhance the possibilities of integrating these sensors into prosthesis designs are analysed.
假肢的基本目标是实现最佳性能水平并提高截肢者的生活质量。尽管套接式假肢存在已知缺点,但仍被广泛使用。最近,骨整合假肢的出现显示出有可能成为套接式假肢的更好替代品,消除了后者的大部分缺点。然而,套接式和骨整合式肢体假肢在使用过程中都容易发生浅表感染。套接与软组织之间的摩擦导致的易感染皮肤损伤是套接式假肢的一个已知问题。另一方面,骨整合会在植入物与残端的界面处形成开放性伤口。有人提出在假肢中集成感染传感器以检测和预防感染,以提高截肢者的生活质量。由于已确定病原挥发物是一种有力刺激因素,本文综述了感染传感领域的当前技术,特别关注识别具有集成到假肢设计潜力的便携式和柔性传感器。本文综述了各种传感器架构,包括但不限于由导电聚合物、碳聚合物复合材料、金属氧化物半导体、金属有机框架、水凝胶和合成低聚物制成的传感器。分析了将这些传感器集成到假肢设计中的可能性所面临的挑战及其潜在的整合途径。