Xiaojuan Liu, Jiahui Zhao, Yang Xue, Yuanling Bing, Lei Ge, Limin Yang, Panpan Gai, Feng Li
MicroRNAs (miRNAs) are pivotal regulators of plant growth and stress response. The development of plant wearable miRNA-specific sensors holds significant potential to unveil new insights into plant physiology and to advance precision agriculture. However, monitoring miRNA expression in living plants remains a formidable challenge due to their low abundance, short sequence length, and complex matrix of real plant tissues. Herein, a plant wearable dual-electrode ratiometric chip (DER-Chip) was designed and fabricated for the direct, in-field sensitive determination of miRNA without the requirement of target enrichment or any pretreatment. The DER-Chip consists of two flexible electrodes: a hydrogel electrode for housing the DNA probes and extracting targets from the complex plant extrudate and a specially designed gold nanoparticle-modified laser-induced graphene (LIG/Au) electrode for reliable electrochemical signal readout. Through being equipped with target-triggered hybridization chain reaction amplification, ratiometric electrochemical signal output, and a magnetic-driven directional transfer strategy, the DER-Chip exhibited excellent analytical performance for plant miRNA with a detection limit down to 3.2 fM. Given the advancements in scalable manufacturing techniques and the miniaturization of biological assays, the proposed wearable chip can be engineered with a portable analyzer for in situ assessment of miRNA expression levels in tomatoes under drought and salt stress conditions.