Elucidating the underlying mechanisms of silicon to suppress the effects of nitrogen deficiency in pepper plants

Plant Physiol Biochem. 2024 Nov:216:109113. doi: 10.1016/j.plaphy.2024.109113. Epub 2024 Sep 12.

Abstract

In many regions, nitrogen (N) deficiency limits pepper cultivation, presenting significant cultivation challenges. This study investigates the impact of N deficiency and silicon (Si) supplementation on physiological responses and antioxidant modulation in pepper plants, focusing particularly on the homeostasis of carbon (C), nitrogen, and phosphorus (P), and their effects on growth and biomass production. Conducted in a factorial design, the experiment examined pepper plants under conditions of N sufficiency and deficiency, with and without Si supplementation (0.0 mM and 2.0 mM). Results showed that N deficiency sensitizes pepper plants, leading to increased electrolyte leakage (39.59%) and disrupted C, N, and P homeostasis. This disruption manifests as reductions in photosynthetic pigments (-64.53%), photochemical efficiency (-14.92%), and the synthesis of key metabolites such as total free amino acids (-86.97%), sucrose (-53.88%), and soluble sugars (-39.96%), ultimately impairing plant growth. However, Si supplementation was found to alleviate these stresses. It modulated the antioxidant system, enhanced the synthesis of ascorbic acid (+30.23), phenolic compounds (+33.19%), and flavonoids (+7.52%), and reduced cellular electrolyte leakage (-25.02%). Moreover, Si helped establish a new homeostasis of C, N, and P, optimizing photosynthetic and nutritional efficiency by improving the utilization of C (+17.46%) and N (+13.20%). These Si-induced modifications in plant physiology led to increased synthesis of amino acids (+362.20%), soluble sugars (+51.34%), and sucrose (77.42%), thereby supporting enhanced growth of pepper plants. These findings elucidate the multifaceted biological roles of Si in mitigating N deficiency effects, offering valuable insights for more sustainable horticultural practices.

Keywords: Abiotic stress; Antioxidant defense mechanisms; Capsicum annuum L.; Carbon use efficiency; Nutritional disorders; Oxidative stress; Photochemical efficiency.

MeSH terms

  • Antioxidants / metabolism
  • Capsicum* / drug effects
  • Capsicum* / growth & development
  • Capsicum* / metabolism
  • Carbon / metabolism
  • Nitrogen* / deficiency
  • Nitrogen* / metabolism
  • Phosphorus / deficiency
  • Phosphorus / metabolism
  • Photosynthesis* / drug effects
  • Silicon* / metabolism
  • Silicon* / pharmacology

Substances

  • Nitrogen
  • Silicon
  • Antioxidants
  • Carbon
  • Phosphorus