TY - JOUR
T1 - Minimally-invasive, real-time, non-destructive, species-independent phytohormone biosensor for precision farming
AU - Bukhamsin, Abdullah
AU - Ait Lahcen, Abdellatif
AU - Filho, Jose De Oliveira
AU - Shetty, Saptami
AU - Blilou, Ikram
AU - Kosel, Jürgen
AU - Salama, Khaled Nabil
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/10/15
Y1 - 2022/10/15
N2 - To keep up with population growth, precision farming technologies must be implemented to sustainably increase agricultural output. The impact of such technologies can be expanded by monitoring phytohormones, such as salicylic acid. In this study, we present a plant-wearable electrochemical sensor for in situ detection of salicylic acid. The sensor utilizes microneedle-based electrodes that are functionalized with a layer of salicylic acid selective magnetic molecularly imprinted polymers. The sensor's capability to detect the phytohormone is demonstrated both in vitro and in vivo with a limit of detection of 2.74 μM and a range of detection that can reach as high as 150 μM. Furthermore, the selectivity of the sensor is verified by testing the sensor on commonly occurring phytohormones. Finally, we demonstrate the capability of the sensor to detect the onset of fungal infestation in Tobacco 5 min post-inoculation. This work shows that the sensor could serve as a promising platform for continuous and non-destructive monitoring in the field and as a fundamental research tool when coupled with a portable potentiostat.
AB - To keep up with population growth, precision farming technologies must be implemented to sustainably increase agricultural output. The impact of such technologies can be expanded by monitoring phytohormones, such as salicylic acid. In this study, we present a plant-wearable electrochemical sensor for in situ detection of salicylic acid. The sensor utilizes microneedle-based electrodes that are functionalized with a layer of salicylic acid selective magnetic molecularly imprinted polymers. The sensor's capability to detect the phytohormone is demonstrated both in vitro and in vivo with a limit of detection of 2.74 μM and a range of detection that can reach as high as 150 μM. Furthermore, the selectivity of the sensor is verified by testing the sensor on commonly occurring phytohormones. Finally, we demonstrate the capability of the sensor to detect the onset of fungal infestation in Tobacco 5 min post-inoculation. This work shows that the sensor could serve as a promising platform for continuous and non-destructive monitoring in the field and as a fundamental research tool when coupled with a portable potentiostat.
KW - Lightweight custom potentiostat
KW - Minimally invasive monitoring
KW - Molecularly imprinted polymers
KW - Precision farming
KW - Salicylic acid
UR - http://www.scopus.com/inward/record.url?scp=85133683720&partnerID=8YFLogxK
U2 - 10.1016/j.bios.2022.114515
DO - 10.1016/j.bios.2022.114515
M3 - Article
C2 - 35809453
AN - SCOPUS:85133683720
SN - 0956-5663
VL - 214
JO - Biosensors and Bioelectronics
JF - Biosensors and Bioelectronics
M1 - 114515
ER -