Silver nanoparticles (AgNPs) have gained attention as antimicrobial agents in plant tissue culture to reduce microbial contamination. The present study aimed to investigate the plant-protective potential of green-synthesized AgNPs at optimized concentrations in citrus micropropagation media. AgNPs were synthesized using juice of
Citrus sinensis
through an environmentally friendly and cost-effective approach.
The optimized synthesis ratio for AgNPs was 1:4 (orange juice: 1% AgNO₃). UV–Vis spectroscopy showed a characteristic peak at 450 nm. Zetasizer analysis revealed a particle size of 100.2 ± 0.12 nm with a zeta potential of − 23.8 mV, indicating stability. Energy-dispersive X-ray (EDX) analysis confirmed the presence of silver (33.06%), while scanning electron microscopy (SEM) showed predominantly spherical nanoparticles with an average size of 37.41 nm. The antimicrobial efficacy of AgNPs was evaluated in the micropropagation media of three citrus species (
Citrus sinensis
,
Citrus reticulata
, and
Citrus micrantha
) at concentrations of 2, 3, and 5 ppm. Among the treatments, 3 ppm AgNPs effectively reduced microbial contamination and significantly enhanced plant growth parameters, including shoot length, root length, number of leaves, and chlorophyll content (
P
< 0.05). Gene expression analysis of the PP2A housekeeping gene showed no significant variation between treated and control plants under the tested conditions.
The findings suggest that green-synthesized AgNPs, particularly at an optimized concentration of 3 ppm, have potential as antimicrobial agents in citrus micropropagation systems under controlled in vitro conditions. However, these results are based on short-term experiments involving limited plant species, and further studies are required to evaluate long-term effects and broader applicability before generalizing their use.
G. Z. Jahangir, A. Shahzad, Ayesha Naz et al.· Chemical and Biological Tech...· 0 citations
BACKGROUND
the study aims to evaluate the effectiveness of bone-derived biochar, produced from slaughterhouse waste, as a multifunctional soil amendment within a climate-smart and circular agriculture framework. The central research question explores whether biochar can enhance maize (Zea mays) productivity, improve soil health, and reduce greenhouse gas (GHG) emissions in arid agroecosystems. A two-season field experiment was conducted on loamy sand soil under drip irrigation to assess the impact of biochar applied at 0, 5, 10, and 20 t ha-1. The responses measured included agronomic traits (plant height, biomass, grain yield), soil biochemical properties (organic carbon, available phosphorus, microbial biomass carbon), GHG emissions (CO₂ and N₂O), and economic returns. Principal Component Analysis (PCA) was applied to integrate the agronomic, environmental, and economic outcomes.
RESULTS
biochar significantly improved plant growth, increased biomass by 28%, grain yield by 51%, and enhanced soil quality indicators. Notably, it reduced CO₂ emissions by 24% and N₂O by 15%. The 10 t ha-1 application rate was identified as the most effective in balancing yield, soil health, and emissions mitigation.
CONCLUSIONS
bone-derived biochar offers a sustainable, climate-resilient strategy for improving maize productivity and soil health while contributing to GHG reduction and supporting circular economy goals in arid farming systems.
L. Hamed, E. Emara· BMC Plant Biology· 0 citations