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利用电容变化监测骨折愈合情况的生物电子接骨板。

Bioelectronic osteosynthesis plate to monitor the fracture bone healing using electric capacitive variations.

作者信息

Pires Diogo G, Silva Nuno M, Completo A, Santos Marco P Soares Dos

机构信息

Department of Mechanical Engineering, Centre for Mechanical Technology & Automation (TEMA), University of Aveiro, Aveiro, 3810-193, Portugal.

Department of Engineering, University of Trás-os-Montes e Alto Douro, Vila Real, 5000-801, Portugal.

出版信息

J Orthop Surg Res. 2025 Jan 29;20(1):105. doi: 10.1186/s13018-025-05534-4.

Abstract

BACKGROUND

Bone fractures represent a global public health issue. Over the past few decades, a sustained increase in the number of incidents and prevalent cases have been reported, as well as in the years lived with disability. Current monitoring techniques predominantly rely on imaging methods, which can result in subjective assessments, and expose patients to unnecessary cumulative doses of radiation. Besides, they are costly and incapable of providing continuous daily detection of fracture healing stages. Technological advances are still required to design fixation systems with the ability to minimize the risk of delayed healing and nonunion conditions for timely medical intervention, such that preventive procedures can be provided. This work proposes.

METHODS

An innovative bioelectronic osteosynthesis plate, minimally customized from a fixation device used in clinical practice, was developed to monitor the bone-implant interface to effectively detect the progression of bone fractures stages. Our technology includes a network-architectured capacitive interdigitated system, a Bluetooth module, an analog-to-digital converter, a multiplexer, a microcontroller, and a miniaturized battery.

RESULTS

Both experimental tests with biological tissues and numerical simulations show strong evidence that this bioelectronic implant is able: (i) to detect the four distinct bone healing stages, with capacitance decreases throughout the healing process; and (ii) to monitor the callus formation across multiple target regions.

CONCLUSIONS

This work provides a significant contribution to the design of bioelectronic implant technologies for highly personalized sensing of biointerfaces. Our bioelectronic fixation implant supports faster fracture healing, mainly for delayed healing and non-union conditions.

摘要

背景

骨折是一个全球性的公共卫生问题。在过去几十年中,已报告骨折事件和患病病例数量持续增加,以及残疾生存年数增多。当前的监测技术主要依赖成像方法,这可能导致主观评估,并使患者受到不必要的累积辐射剂量。此外,这些方法成本高昂,且无法对骨折愈合阶段进行连续的日常检测。仍需要技术进步来设计固定系统,以将延迟愈合和骨不连情况的风险降至最低,以便及时进行医疗干预,从而能够提供预防措施。本研究提出……

方法

我们开发了一种创新的生物电子接骨板,它是由临床实践中使用的固定装置进行最小化定制而成,用于监测骨 - 植入物界面,以有效检测骨折阶段的进展。我们的技术包括一个网络架构的电容式叉指系统、一个蓝牙模块、一个模数转换器、一个多路复用器、一个微控制器和一个小型化电池。

结果

对生物组织的实验测试和数值模拟均有力证明,这种生物电子植入物能够:(i)检测出四个不同的骨愈合阶段,在整个愈合过程中电容会降低;以及(ii)监测多个目标区域的骨痂形成情况。

结论

本研究为高度个性化生物界面传感的生物电子植入技术设计做出了重要贡献。我们的生物电子固定植入物有助于加快骨折愈合,主要针对延迟愈合和骨不连情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c078/11776201/cb8af6ce10b9/13018_2025_5534_Fig1_HTML.jpg

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