Nanobionic enhancement of plant growth via copper nanoclusters in Raphanus sativus
Abstract
Abstract Copper-based nanobionics offer a promising route to enhance photosynthetic efficiency and crop productivity. In this study the application of two photoluminescent copper nanomaterials, cysteine-stabilized copper nanoclusters (Cu-Cys) and copper-doped carbon nanoassemblies (Cu-CNAs) were used in studies of Raphanus sativus (radish), evaluating their uptake, physiological impact, and metabolomic response. Direct application of the optimal Cu-CNA concentration (250 mg·L⁻ 1 ) with seed priming resulted in a 63% increase in radish dry mass and a 31% increase in foliar dry mass, accompanied by a statistically significant 23% rise in chlorophyll absorbance (p* < 0.005) and a 67% increase in vitamin C concentration. ICP-MS confirmed up to 225% copper enrichment in foliage compared to the control, while CT imaging revealed a 49 Hounsfield Unit reduction in tissue density, indicative of accelerated cell expansion and increased porosity. MRI T₂ relaxometry showed stable hydration profiles, suggesting no adverse impact on water distribution. Untargeted metabolomics revealed upregulation of nicotinic acid, glycerophosphocholine, and stress-related amino acids such as alanine and pyroglutamyl-isoleucine. These metabolic shifts indicate a mild stress-induced reprogramming that coincides with the enhanced growth and structural improvements observed during both greenhouse trials. These findings demonstrate that Cu-CNAs can synergistically improve nutrient delivery and the crop growth rate, offering a sustainable and scalable strategy for photosynthetic enhancement.
Article Details
Authors (12)
Konstantinos T. Kotoulas
Thomas Hinton
James Hall
Ioannis Pagonis
Panagiota Zygouri
William Cheung
Konstantinos Spyrou
Robert H. Morris
Yunhong Jiang
Andrew D. Burrows
Gareth W. V. Cave
Ming Xie
Department of Chemical Engineering