Fang Peilin, Ji Xianglin, Zhao Xi, Yan-Do Richard, Wan Youyang, Wang Ying, Zhang Yuanting, Shi Peng
Department of Biomedical Engineering, The City University of Hong Kong, Kowloon, Hong Kong SAR, 999077, China.
Department of Otolaryngology Head and Neck Surgery, Beijing Tong Ren Hospital, Capital Medical University, Beijing, 100730, China.
Adv Mater. 2023 Feb;35(5):e2207282. doi: 10.1002/adma.202207282. Epub 2022 Dec 16.
Methylated circulating DNAs (ctDNAs) have recently been reported as a promising biomarker for early cancer diagnostics, but limited tools are currently available for continuous and dynamic profiling of ctDNAs and their methylation levels, especially when such assays need to be conducted in point-of-care (POC) scenarios. Here, a self-healing bioelectronic patch (iMethy) is developed that combines transdermal interstitial fluid (ISF) extraction and field effect transistor-based (FET-based) biosensing for dynamic monitoring of methylated ctDNAs as a prognostic approach for cancer risk management. The projection micro-stereolithography-based 3D patterning of an Eutectic Gallium-Indium (EGaIn) circuit with an unprecedented 10 µm resolution enables the construction of self-healing EGaIn microfluidic circuits that remain conductive under 100% strain and self-healing under severe destruction. In combination with continuous transdermal ISF sampling of methylated ctDNAs, iMethy can detect ctDNAs as low as 10 m in cellular models and is capable of phenotypic analysis of tumor growth in rodent animals. As the first demonstration of a wearable device for real-time in vivo analysis of disease-indicative biomarkers, this proof-of-concept study well demonstrated the potential of the iMethy platform for cancer risk management based on dynamic transdermal surveillance of methylated ctDNAs via a painless and self-administrable procedure.
甲基化循环DNA(ctDNA)最近被报道为一种有前景的早期癌症诊断生物标志物,但目前用于连续动态分析ctDNA及其甲基化水平的工具有限,特别是当此类检测需要在即时护理(POC)场景中进行时。在此,开发了一种自修复生物电子贴片(iMethy),它结合了经皮间质液(ISF)提取和基于场效应晶体管(FET)的生物传感技术,用于动态监测甲基化ctDNA,作为癌症风险管理的一种预后方法。基于投影微立体光刻技术对共晶镓铟(EGaIn)电路进行3D图案化,分辨率达到前所未有的10 µm,能够构建自修复EGaIn微流体电路,该电路在100%应变下仍保持导电,在严重破坏下能够自我修复。结合对甲基化ctDNA的连续经皮ISF采样,iMethy在细胞模型中能够检测低至10 m的ctDNA,并能够对啮齿动物的肿瘤生长进行表型分析。作为用于疾病指示生物标志物实时体内分析的可穿戴设备的首次展示,这项概念验证研究充分证明了iMethy平台基于通过无痛且可自我管理的程序对甲基化ctDNA进行动态经皮监测来进行癌症风险管理的潜力。