Gao Jiepei, Li Hongji, Li Mingji, Wang Guilian, Long Yongbing, Li Penghai, Li Cuiping, Yang Baohe
Tianjin Key Laboratory of Organic Solar Cells and Photochemical Conversion, Tianjin Key Laboratory of Drug Targeting and Bioimaging, School of Chemistry and Chemical Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Tianjin Key Laboratory of Organic Solar Cells and Photochemical Conversion, Tianjin Key Laboratory of Drug Targeting and Bioimaging, School of Chemistry and Chemical Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Anal Chim Acta. 2021 Feb 8;1145:103-113. doi: 10.1016/j.aca.2020.11.008. Epub 2020 Nov 13.
The in vivo detection of small active molecules in plant tissues is essential for the development of precision agriculture. Tryptophan (Trp) is an important precursor material for auxin biosynthesis in plants, and the detection of Trp levels in plants is critical for regulating the plant growth process. In this study, an electrochemical plant sensor was fabricated by electrochemically depositing a polydopamine (PDA)/reduced graphene oxide (RGO)-MnO nanocomposite onto a glassy carbon electrode (GCE). PDA/RGO-MnO/GCE exhibited high electrocatalytic activity for the oxidation of Trp owing to the combined selectivity of PDA and catalytic activity of RGO-MnO. To address the pH variability of plants, a reliable Trp detection program was proposed for selecting an appropriate quantitative detection model for the pH of the plant or plant tissue of interest. Therefore, a series of linear regression curves was constructed in the pH range of 4.0-7.0 using the PDA/RGO-MnO/GCE-based sensor. In this pH range, the linear detection range of Trp was 1-300 μM, the sensitivity was 0.39-1.66 μA μM, and the detection limit was 0.22-0.39 μM. Moreover, the practical applicability of the PDA/RGO-MnO/GCE-based sensor was successfully demonstrated by determining Trp in tomato fruit and juice. This sensor stably and reliably detected Trp levels in tomatoes in vitro and in vivo, demonstrating the feasibility of this research strategy for the development of electrochemical sensors for measurements in various plant tissues.
植物组织中小活性分子的体内检测对于精准农业的发展至关重要。色氨酸(Trp)是植物生长素生物合成的重要前体物质,植物中色氨酸水平的检测对于调节植物生长过程至关重要。在本研究中,通过将聚多巴胺(PDA)/还原氧化石墨烯(RGO)-MnO纳米复合材料电化学沉积到玻碳电极(GCE)上制备了一种电化学植物传感器。由于PDA的选择性和RGO-MnO的催化活性相结合,PDA/RGO-MnO/GCE对Trp的氧化表现出高电催化活性。为了解决植物pH值的变异性问题,提出了一种可靠的Trp检测程序,用于为感兴趣的植物或植物组织的pH值选择合适的定量检测模型。因此,使用基于PDA/RGO-MnO/GCE的传感器在4.0-7.0的pH范围内构建了一系列线性回归曲线。在此pH范围内,Trp的线性检测范围为1-300μM,灵敏度为0.39-1.66μAμM,检测限为0.22-0.39μM。此外,通过测定番茄果实和汁液中的Trp,成功证明了基于PDA/RGO-MnO/GCE的传感器的实际适用性。该传感器在体外和体内均能稳定可靠地检测番茄中的Trp水平,证明了该研究策略对于开发用于各种植物组织测量的电化学传感器的可行性。