He Tianyiyi, Wang Jinge, Hu Donghui, Yang Yanqin, Chae Eunyoung, Lee Chengkuo
Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 117583, Singapore.
Center for Intelligent Sensors and MEMS (CISM), National University of Singapore, Singapore, 117608, Singapore.
Nat Commun. 2025 Apr 4;16(1):3244. doi: 10.1038/s41467-025-58584-x.
Real-time monitoring of plant immune responses is crucial for understanding plant immunity and mitigating economic losses from pathogen and pest attacks. However, current methods relying on molecular-level assessment are destructive and time-consuming. Here, we report an ultrathin, substrate-free, and highly conductive electronic tattoo (e-tattoo) designed for plants, enabling immune response monitoring through non-invasive electrical impedance spectroscopy (EIS). The e-tattoo's biocompatibility, high conductivity, and sub-100 nm thickness allow it to conform to leaf tissue morphology and provide robust impedance data. We demonstrate continuous EIS analysis of live transgenic Arabidopsis thaliana plants for over 24 h, capturing the onset of NLR-mediated acute immune responses within three hours post-induction, prior to visible symptoms. RNA-seq and tissue ion leakage tests validate that EIS data accurately represent the physiological and molecular changes associated with immune activation. This non-invasive tissue-assessment technology has the potential to enhance our comprehension of immune activation mechanisms in plants and paves the way for real-time monitoring for plant health management.
实时监测植物免疫反应对于理解植物免疫以及减轻病原体和害虫攻击造成的经济损失至关重要。然而,目前依赖分子水平评估的方法具有破坏性且耗时。在此,我们报告了一种专为植物设计的超薄、无基底且高导电的电子纹身(e-纹身),它能够通过非侵入式电阻抗光谱(EIS)监测免疫反应。该e-纹身的生物相容性、高导电性以及小于100纳米的厚度使其能够贴合叶片组织形态并提供可靠的阻抗数据。我们展示了对活体转基因拟南芥植物进行超过24小时的连续EIS分析,在诱导后三小时内,在可见症状出现之前捕捉到了NLR介导的急性免疫反应的起始。RNA测序和组织离子渗漏测试证实,EIS数据准确地反映了与免疫激活相关的生理和分子变化。这种非侵入性组织评估技术有潜力增强我们对植物免疫激活机制的理解,并为植物健康管理的实时监测铺平道路。