Time-resolved chemical monitoring of whole plant roots with printed electrochemical sensors and machine learning

Author:

Coatsworth Philip1ORCID,Cotur Yasin1ORCID,Naik Atharv1ORCID,Asfour Tarek1ORCID,Collins Alex Silva-Pinto1,Olenik Selin1,Zhou Zihao1,Gonzalez-Macia Laura1ORCID,Chao Dai-Yin2ORCID,Bozkurt Tolga3ORCID,Güder Firat1ORCID

Affiliation:

1. Imperial College London, Department of Bioengineering, Royal School of Mines, SW7 2AZ London, UK.

2. Shanghai Center for Plant Stress Biology, CAS Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, China.

3. Imperial College London, Department of Life Sciences, Royal School of Mines, SW7 2AZ London, UK.

Abstract

Traditional single-point measurements fail to capture dynamic chemical responses of plants, which are complex, nonequilibrium biological systems. We report TETRIS ( t ime-resolved e lectrochemical t echnology for plant r oot environment i n s itu chemical sensing), a real-time chemical phenotyping system for continuously monitoring chemical signals in the often-neglected plant root environment. TETRIS consisted of low-cost, highly scalable screen-printed electrochemical sensors for monitoring concentrations of salt, pH, and H 2 O 2 in the root environment of whole plants, where multiplexing allowed for parallel sensing operation. TETRIS was used to measure ion uptake in tomato, kale, and rice and detected differences between nutrient and heavy metal ion uptake. Modulation of ion uptake with ion channel blocker LaCl 3 was monitored by TETRIS and machine learning used to predict ion uptake. TETRIS has the potential to overcome the urgent “bottleneck” in high-throughput screening in producing high-yielding plant varieties with improved resistance against stress.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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