FOLIAR ZINC SUPPLEMENTATION ENHANCES YIELD AND MITIGATES OXIDATIVE DAMAGE IN SALT-STRESSED BINA DHAN-8

Mohammad Ashik Elahi Shohel*, Md. Alimuzzaman Rifath, Md. Edul Hasan Rimon, Md. Morshalin Haque, Md. Abujar Gifari Mim, Md. Abdullah Majumder, Md. Emrul Hasan, Mst. Sumaiya Akter Mim and Mst. Fahima Akhtari

Foliar Zinc Supplementation Enhances Yield and Mitigates Oxidative Damage in Salt-Stressed BINA dhan-8

Mohammad Ashik Elahi Shohel1*, Md. Alimuzzaman Rifath1, Md. Edul Hasan Rimon1, Md. Morshalin Haque1, Md. Abujar Gifari Mim1, Md. Abdullah Majumder1, Md. Emrul Hasan1, Mst. Sumaiya Akter Mim1 and Mst. Fahima Akhtari1

 1 Department of Agricultural Chemistry, EXIM Bank Agricultural University, Bangladesh, Chapainawabganj-6300.

*Corresponding author: shohel.sau70@gmail.com

A R T I C L E  I N F O

Article Type: Research

Received: 10 April 2026.

Accepted: 9 June 2026.

Published: 20 June 2026.

 

 

A B S T R A C T

Soil salinity is one of the fastest-growing constraints on rice (Oryza sativa L.) productivity worldwide, currently affecting nearly 1.4 billion hectares of land, with a further one billion hectares at risk. Salinity-induced osmotic and ionic stress triggers excessive reactive oxygen species (ROS) accumulation, disrupting membrane integrity and nutrient homeostasis; zinc (Zn), a cofactor of key antioxidant enzymes, is itself often rendered less available in saline soils, compounding the damage. This study evaluated whether foliar Zn nutrition could mitigate salt-induced oxidative stress and sustain the yield of the salt-tolerant rice variety BINA dhan-8. A pot experiment was conducted in a Completely Randomized Design with two factors: four foliar Zn levels (0, 0.05, 0.10 and 0.15%) and four salinity levels (0, 3, 6 and 9 dS/m) – replicated three times (48 pots) during the 2025 Aman season at EXIM Bank Agricultural University, Bangladesh. Chapainawabganj. Both factors and their interaction significantly (p < 0.05) affected all growth and yield-contributing traits. The combination of 0.05% Zn with moderate salinity (6 dS/m) produced the tallest plants (85.30 cm), the highest number of effective tillers (14.33 hill⁻¹), the longest panicles (24.10 cm), the most filled grains (97.33 panicle⁻¹) and the highest grain yield (22.57 g pot⁻¹); 68% above the unsprayed, most severely salinized control (Zn0S3, 13.47 g pot⁻¹). Excess Zn (0.15%) did not add further benefit, pointing to an optimum foliar dose near 0.05%. Correlation analysis confirmed grain yield was most strongly associated with panicle length (r = 0.98) and negatively associated with unfilled grain number (r = – 0.98). These results demonstrate that a single, low-cost foliar Zn spray schedule can substantially buffer rice yield losses on moderately saline soils, offering a practical, scalable option for salinity-prone deltas such as coastal Bangladesh.

Keywords:

Oryza sativa, salinity stress, zinc nutrition, foliar application, oxidative stress, antioxidant defense, grain yield, BINA dhan-8.

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