材料科学
激素
弹性(材料科学)
生物系统
压力(语言学)
生物物理学
适应(眼睛)
植物生长
纳米技术
生物逆境
延伸率
工作(物理)
生物
聚合物
生化工程
纤维
体内
电极
生物医学工程
植物激素
生物传感器
导电体
植物发育
作者
Kuangyi Zou,Jiacheng Wang,Xiangyi Li,Sicheng Huang,Fei Zhou,Hongyu Chen,Yiding Jiao,Qianming Li,Yiran Li,Er He,Fangyan Li,Yongle Liu,Chenyu Bai,Jie Song,Shuo Yang,Xusong Li,Tingting Ye,Yuanzhen Wang,Hanting Zhang,Xinyin Cao
摘要
Plant stress during growth, caused by extreme environments and biotic attacks, threatens global biodiversity and crop production, necessitating urgent elucidation of plant adaptation mechanisms. Endogenous hormones of plant growth serve as master regulators and earliest indicators of stress adaptation, making it crucial to monitor their dynamics continuously. However, existing methods, including chromatography and electrochemical probes, fail because of their mismatch with the irreversible and plastic nature of plant growth. Here, we unexpectedly find a growing fiber sensor based on an electrode consisting of a dynamic polymer network infiltrated with liquid metal, termed metalgel. The sensor undergoes irreversible elongation ∼up to 10 times its original length under just 3.2 kPa tensile stress, at least 2 orders of magnitude lower than existing electronic conductive systems, thus achieving synchronous deformation with plant growth without inducing mechanical damage or hormonal disturbances. Hormone dynamics and relevant signaling pathways during plant growth in response to pathogen infection, salt stress, and even extreme ultraviolet radiation are thus revealed by the sensor. This work provides quantitative insights into plant stress resilience mechanisms and offers a feasible route to alleviate the food and ecological crises.
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