Bioinspired VLSI Circuits and Systems Group, Department of Bioengineering, Imperial College London, Exhibition Road, London, SW7 2AZ, UK.
Biomedical Sensors Group, Department of Bioengineering, Imperial College London, Exhibition Road, London, SW7 2AZ, UK.
J Neuroeng Rehabil. 2020 Aug 21;17(1):114. doi: 10.1186/s12984-020-00742-x.
Traumatic Brain Injury (TBI) is a leading cause of fatality and disability worldwide, partly due to the occurrence of secondary injury and late interventions. Correct diagnosis and timely monitoring ensure effective medical intervention aimed at improving clinical outcome. However, due to the limitations in size and cost of current ambulatory bioinstruments, they cannot be used to monitor patients who may still be at risk of secondary injury outside the ICU.
We propose a complete system consisting of a wearable wireless bioinstrument and a cloud-based application for real-time TBI monitoring. The bioinstrument can simultaneously record up to ten channels including both ECoG biopotential and neurochemicals (e.g. potassium, glucose and lactate), and supports various electrochemical methods including potentiometry, amperometry and cyclic voltammetry. All channels support variable gain programming to automatically tune the input dynamic range and address biosensors' falling sensitivity. The instrument is flexible and can be folded to occupy a small space behind the ear. A Bluetooth Low-Energy (BLE) receiver is used to wirelessly connect the instrument to a cloud application where the recorded data is stored, processed and visualised in real-time. Bench testing has been used to validate device performance.
The instrument successfully monitored spreading depolarisations (SDs) - reproduced using a signal generator - with an SNR of 29.07 dB and NF of 0.26 dB. The potentiostat generates a wide voltage range from -1.65V to +1.65V with a resolution of 0.8mV and the sensitivity of the amperometric AFE was verified by recording 5 pA currents. Different potassium, glucose and lactate concentrations prepared in lab were accurately measured and their respective working curves were constructed. Finally,the instrument achieved a maximum sampling rate of 1.25 ksps/channel with a throughput of 105 kbps. All measurements were successfully received at the cloud.
The proposed instrument uniquely positions itself by presenting an aggressive optimisation of size and cost while maintaining high measurement accuracy. The system can effectively extend neuroelectrochemical monitoring to all TBI patients including those who are mobile and those who are outside the ICU. Finally, data recorded in the cloud application could be used to help diagnosis and guide rehabilitation.
创伤性脑损伤(TBI)是全球范围内导致死亡和残疾的主要原因之一,部分原因是继发性损伤和晚期干预的发生。正确的诊断和及时的监测可确保进行有效的医疗干预,以改善临床结果。但是,由于当前可移动生物仪器的尺寸和成本限制,它们不能用于监测可能仍处于 ICU 之外的继发性损伤风险的患者。
我们提出了一个由可穿戴无线生物仪器和基于云的实时 TBI 监测应用程序组成的完整系统。该生物仪器可以同时记录多达十个通道,包括脑电生物电位和神经化学物质(例如钾,葡萄糖和乳酸),并支持各种电化学方法,包括电位法,电流法和循环伏安法。所有通道均支持可变增益编程,以自动调整输入动态范围并解决生物传感器灵敏度下降的问题。该仪器灵活,可以折叠到耳朵后面的小空间中。使用蓝牙低能(BLE)接收器将仪器无线连接到云应用程序,在该应用程序中,记录的数据被存储,实时处理和可视化。已经进行了台式测试以验证设备性能。
该仪器成功监测了传播性去极化(SD)-使用信号发生器再现-信噪比为 29.07dB,噪声系数为 0.26dB。该恒电位仪可产生从-1.65V 到+1.65V 的宽电压范围,分辨率为 0.8mV,并且通过记录 5pA 的电流来验证了安培计的灵敏度。在实验室中准确测量了不同浓度的钾,葡萄糖和乳酸,并构建了各自的工作曲线。最后,仪器的最大采样率达到了 1.25ksps/通道,吞吐量为 105kbps。所有测量值都成功传送到云端。
该仪器通过对尺寸和成本进行积极优化,同时保持高精度测量,从而在独特的位置上定位自己。该系统可以有效地将神经电化学监测扩展到所有 TBI 患者,包括移动患者和 ICU 外患者。最后,在云应用程序中记录的数据可用于帮助诊断和指导康复。