Showing 2 results for Electrolyte Leakage
Maryam Hashemvand, Mohammad Sedghi,
Volume 12, Issue 2 (3-2026)
Abstract
Objective: This study aimed to investigate the effects of seed priming with silicon on germination and biochemical responses of maize (Zea mays L. SC 704) under different pH levels of the growth medium.
Method: The experiment was conducted as a factorial arrangement within a completely randomized design (CRD) with three replications. Treatments consisted of four priming levels: control (distilled water) and silicon (as sodium silicate) at concentrations of 50, 100, and 150 mg L-1, and three pH levels of the growth medium (5, 6.5, and 8). The measured traits included germination indices (percentage and rate), seedling growth (fresh weight, vigor weight, and length), ion leakage (relative electrolyte leakage, REL), and biochemical indices (activities of α-amylase and protease, soluble sugar content, total protein, and silicon uptake)
Results: Deviation from the optimal pH (6.5) toward acidic (pH 5) or alkaline (pH 8) conditions significantly reduced germination and growth indices while increasing ion leakage. Seed priming with silicon, particularly at 150 mg L-1, markedly mitigated the adverse effects of pH changes. Under acidic conditions (pH 5), this treatment increased germination percentage by 63.19% compared to the non-silicon control at the same pH, reduced relative electrolyte leakage (REL), and significantly enhanced α-amylase and protease activities, soluble sugar content, total protein, and silicon uptake. The interaction between silicon and pH was significant only for germination rate, highlighting the specific role of silicon in accelerating germination under unfavorable pH conditions.
Conclusions: Seed priming with silicon at 150 mg L-1 effectively enhances germination capability and reinforces the physiological and biochemical status of maize seeds under non-optimal pH conditions, particularly acidic stress. This approach holds significant promise for improving field establishment in soils with suboptimal pH.
Highlights
- Silicon priming improved germination, rate and vigor at all pH levels, especially pH 5.
- Silicon (150 mg L-1) reduced electrolyte leakage and membrane damage under pH stress.
- Silicon enhanced α-amylase, protease, soluble sugars and total protein in seedlings.
- Silicon benefits were pH-independent, ensuring robust stress alleviation during germination.
Ramin Zeilabpour, Ali Moradi, Hamidreza Balouchi, Alireza Yadavi, Hojatollah Latifmanesh,
Volume 12, Issue 2 (3-2026)
Abstract
Objective: Seed aging in oilseeds such as sesame is a major storage challenge, reducing germination quality and seedling vigor. The high-oil cultivar Darab‑1 is highly sensitive to storage conditions (temperature, moisture, and time). In this study, the effects of different Pix concentrations in interaction with temperature, moisture, and storage duration were investigated on germination and biochemical traits of seeds to determine the possibility of improving seed quality stability during storage.
Methods: The experiment was conducted as a four‑factor factorial arrangement in a completely randomized design with three replications. The studied factors were storage temperature (15, 25, and 35°C), seed moisture content (9, 12, and 15%), Pix concentration (0, 3000, and 4500 mg L-1), and storage duration (30, 60, 90, 120, 150, and 180 days). After the storage period, seed physiological traits including germination percentage and rate, root and shoot length, seedling dry weight, vigor index, α‑amylase activity, and electrolyte leakage were measured.
Results: Increasing temperature, moisture, and storage duration accelerated seed aging. After 180 days, electrolyte leakage in control seeds increased from 21.47 to 72.72% when storage temperature rose from 15 to 25°C (at 9% moisture), indicating a 54% increase in membrane leakage, while Pix at 3000 mg/L reduced it by 19–80%. α-amylase activity decreased with seed deterioration, but Pix at 3000 mg/L maintained the highest enzyme activity (15.5 vs. 16.3 nmol seed-1min-1 after 180 days). Germination percentage and rate, seedling length and dry weight, and vigor index also declined with aging; however, Pix treatment, especially at 3000 mg L-1, significantly moderated these reductions.
Conclusions: Storage at high temperature and moisture accelerated sesame seed deterioration, reducing germination and α‑amylase activity while increasing membrane damage. Pix at 3000 mg L-1 was the most effective treatment, maintaining seed vigor and enzyme activity and reducing electrolyte leakage. Therefore, seed treatment with 3000 mg L-1 Pix before storage, especially at 15°C and 9% moisture content, can be recommended as an effective strategy to extend seed longevity and maintain quality during medium term storage.
Highlights:
- Pix at 3000 mg/L effectively prevented the decline in physiological traits of sesame seeds during storage and maintained germination potential and seed vigor.
- Increased temperature, moisture, and storage duration reduced α‑amylase activity and increased electrolyte leakage, indicating accelerated physiological seed aging.
- Pix treatment improved seed quality under warm and humid storage conditions by reducing electrolyte leakage and enhancing membrane stability, suggesting its practical application for extending seed longevity.