Oxidative Stress-Mediated Growth and Yield Decline in Groundnut under Nickel Toxicity: Physiological, Biochemical, and Genotypic Insights
Chandrakant Singh, B. Vishwanatha, Rajiv Kumar, S. B. Chaudhari, D. Sreekanth, Manoj K. YadavAbstract
Heavy metal contamination of agricultural soils poses risks to crop productivity and food safety. A controlled experiment evaluated the growth, physiological, biochemical, antioxidant, and yield responses of two groundnut (Arachis hypogaea L.) cultivars (GJG-9 and GJG-22) exposed to four nickel (Ni) concentrations (0, 20, 100, and 200 ppm). Measurements were recorded at 30 and 60 days after sowing and at harvest. Increasing Ni levels significantly (P ≤ 0.001) reduced plant height, biomass, photosynthetic pigments, membrane stability, and pod number, with greater reductions at higher concentrations. At 200 ppm Ni, pod number decreased by 30−45% compared with the control. Nickel stress enhanced hydrogen peroxide, malondialdehyde, proline content, and ABTS radical-scavenging activity, indicating oxidative stress and antioxidant activation. Roots accumulated more Ni than shoots, while translocation declined with increasing Ni. Cultivar GJG-22 showed greater tolerance than GJG-9, suggesting genotypic differences in Ni stress adaptation. These findings can facilitate breeding programs aimed at developing Ni-tolerant cultivars.