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Author Spotlight: Investigating Fungal Pathogenicity Mechanisms in Maize
Published on: September 15, 2023
Foliar application of selenium increased selenium accumulation, speciation, and bioaccessibility, as well as the
Emmanuel Osei Asamoah1, Solomon Musoke Ssemalawa1, Ofori Prince Danso2
1College of Agriculture, Anhui Science and Technology University, Chuzhou, China.
Introduction:
Selenium (Se) deficiency remains a significant global nutritional issue, emphasizing the need for efficient crop-based biofortification interventions.
Methods:
This study examined the mechanistic responses of sweet maize (Zea mays L.) to foliar Se fertilization (0, 20, 40, and 60 g ha-1), focusing on antioxidant regulation, physiological traits, nutrient metabolism, Se speciation, and Se bioaccessibility.
Results:
Moderate Se doses (20-40 g ha-1) enhanced chlorophyll retention and photosynthetic efficiency, accompanied by increased activities of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), as well as 22.8% reduction in malondialdehyde (MDA), indicating improved redox homeostasis. These biochemical improvements facilitated higher assimilate accumulation, resulting in a 2-7% increase in fresh cob yield and enhanced levels of soluble sugars, amylose, protein, vitamin C, and key micronutrients (magnesium, iron, copper, manganese). However, excessive Se (60 g ha-1) caused oxidative imbalance, leading to decreased enzyme activity and reduced yield. Kernel Se concentration increased significantly with Se supply, dominated by selenomethionine (SeMet) (82.3% of total Se), exhibiting high in vitro bioaccessibility (35.6% gastric, 76.0% intestinal).
Discussion:
The coordinated regulation of antioxidant defense and nutrient metabolism under optimal Se supply enhances both plant physiological performance and the nutritional bioefficacy of edible kernels, providing a mechanistic framework for sustainable Se biofortification.
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