Avcı Ender Ersin, Akgün Gazi, Uygur Mehmet Esat, Polat Mine Gülden, Demirbüken İlkşan
Marmara University, Health Sciences Faculty, Department of Physiotherapy Education and Informatics, Istanbul, Turkey.
University of Tennessee at Chattanooga, College of Engineering and Computer Science (CECS), Department of Engineering Management & Technology /Mechatronics, USA.
Foot Ankle Surg. 2025 Apr 23. doi: 10.1016/j.fas.2025.04.007.
Partial weight bearing (PWB) plays a critical role in early stages of rehabilitation following lower-extremity orthopedic surgery. However, it has been reported patients often have difficulty complying with PWB restrictions, particularly in home setting. The newly designed smart insole system aims to address this issue by remotely monitoring the patient's weight-bearing loads and providing real-time feedback for non-compliant weight-bearing to support PWB compliance. The aim of this study was to assess the validity and reliability of the system in measuring weight-bearing loads and to investigate its feasibility in improving PWB compliance.
The research involved two phases: an experimental design to test validity and reliability in a clinical setting, and a randomized controlled design to test feasibility with remote monitoring at home. Validity and reliability were assessed on a healthy subject using simultaneous load measurements from a smart insole and a force plate under three metronome conditions (30,40, and 60bpm). In the feasibility phase, twelve patients who had undergone microfracture surgery for talar osteochondral lesions were recruited at 4 weeks postoperatively. Participants used Android smartphones and met Ferkel & Scaglione classification criteria I, IIA, and IIB. They were randomized into groups with feedback (FB) or without feedback (NFB) and their compliance with PWB limits was monitored remotely 24-hours for one week using the Insole system.
The insole demonstrated high reliability (SEM:1.67 N, ICC:0.97) and, excellent agreement with the force plate (R=0.9175, p < 0.001). The FB group achieved higher compliance with prescribed PWB thresholds compared to the NFB group.
The newly developed insole system is a valid and reliable rehabilitation tool for accurately measuring weight bearing loads. The system's ability to provide continuous remote patient monitoring and real-time feedback on non-compliant weight bearing has proven to be effective in PWB compliance, which is critical in the postoperative recovery period.
部分负重(PWB)在下肢骨科手术后的康复早期阶段起着关键作用。然而,据报道患者往往难以遵守PWB限制,尤其是在家庭环境中。新设计的智能鞋垫系统旨在通过远程监测患者的负重负荷,并为不符合规定的负重提供实时反馈,以支持PWB的依从性。本研究的目的是评估该系统在测量负重负荷方面的有效性和可靠性,并研究其在提高PWB依从性方面的可行性。
该研究包括两个阶段:一个在临床环境中测试有效性和可靠性的实验设计,以及一个在家中进行远程监测以测试可行性的随机对照设计。在健康受试者身上,使用智能鞋垫和测力板在三种节拍器条件(30、40和60次/分钟)下同时进行负荷测量,评估有效性和可靠性。在可行性阶段,招募了12名因距骨骨软骨损伤接受微骨折手术的患者,术后4周参与研究。参与者使用安卓智能手机,符合Ferkel & Scaglione分类标准I、IIA和IIB。他们被随机分为有反馈(FB)组和无反馈(NFB)组,并使用鞋垫系统对其遵守PWB限制的情况进行为期一周的24小时远程监测。
鞋垫显示出高可靠性(标准误:1.67 N,组内相关系数:0.97),与测力板具有极好的一致性(R = 0.9175,p < 0.001)。与NFB组相比,FB组对规定的PWB阈值的依从性更高。
新开发的鞋垫系统是一种有效且可靠的康复工具,可准确测量负重负荷。该系统能够对患者进行持续远程监测,并对不符合规定的负重提供实时反馈,已被证明在PWB依从性方面是有效的,这在术后恢复期至关重要。