Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field

Abstract The effect of high-voltage electrostatic field (HVEF) on maize seeds’ resistance to chilling injury remains unclear. This study investigates the chemical and spatial changes induced by HVEF at macroscopic and microscopic levels via the combination of physiological assessments and scanning e...

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Main Authors: Yao Lu, Yaoyao Li, Qian Peng, Xiangyun Sun, Qinglu Yang, Zhanhua Song, Fuyang Tian, Yinfa Yan, Mochen Liu
Format: Article
Language:English
Published: Nature Portfolio 2025-02-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-88346-0
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author Yao Lu
Yaoyao Li
Qian Peng
Xiangyun Sun
Qinglu Yang
Zhanhua Song
Fuyang Tian
Yinfa Yan
Mochen Liu
author_facet Yao Lu
Yaoyao Li
Qian Peng
Xiangyun Sun
Qinglu Yang
Zhanhua Song
Fuyang Tian
Yinfa Yan
Mochen Liu
author_sort Yao Lu
collection DOAJ
description Abstract The effect of high-voltage electrostatic field (HVEF) on maize seeds’ resistance to chilling injury remains unclear. This study investigates the chemical and spatial changes induced by HVEF at macroscopic and microscopic levels via the combination of physiological assessments and scanning electron microscopy (SEM). Maize samples were categorized into low and normal-temperature groups. At an HVEF strength of 1.6 kV/cm, all indices in the low-temperature group significantly improved relative to the control (P < 0.01), with germination potential, rate, index, and vigor index increasing by 11.7%, 11.2%, 10.5%, and 31.7%, respectively. Root length, shoot length, and dry weight of maize seedlings rose by 20.3%, 19.2%, and 16.6%. Further analysis revealed a 62.7% increase in soluble sugar content in HVEF-treated seeds and the lowest leaching solution conductivity of 1.6 kV/cm. These results demonstrate that HVEF treatment enhances soluble sugar accumulation during seed germination, regulating osmotic balance within the cells. Furthermore, SEM assessed maize microtissue morphology after chilling injury and HVEF treatment. Optimal HVEF treatment resulted in cell wall expansion, enhanced fiber elasticity, reduced interstitial spaces, and swollen cells, indicating improved hydrophilicity and protease activity. This study offers valuable insights into the mechanisms by which HVEF improves seed performance under low-temperature stress.
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spelling doaj-art-803bff64d4a54c10a19427ecbddc9b552025-02-02T12:21:45ZengNature PortfolioScientific Reports2045-23222025-02-0115111410.1038/s41598-025-88346-0Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic fieldYao Lu0Yaoyao Li1Qian Peng2Xiangyun Sun3Qinglu Yang4Zhanhua Song5Fuyang Tian6Yinfa Yan7Mochen Liu8College of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityCollege of Mechanical and Electronic Engineering, Shandong Agricultural UniversityAbstract The effect of high-voltage electrostatic field (HVEF) on maize seeds’ resistance to chilling injury remains unclear. This study investigates the chemical and spatial changes induced by HVEF at macroscopic and microscopic levels via the combination of physiological assessments and scanning electron microscopy (SEM). Maize samples were categorized into low and normal-temperature groups. At an HVEF strength of 1.6 kV/cm, all indices in the low-temperature group significantly improved relative to the control (P < 0.01), with germination potential, rate, index, and vigor index increasing by 11.7%, 11.2%, 10.5%, and 31.7%, respectively. Root length, shoot length, and dry weight of maize seedlings rose by 20.3%, 19.2%, and 16.6%. Further analysis revealed a 62.7% increase in soluble sugar content in HVEF-treated seeds and the lowest leaching solution conductivity of 1.6 kV/cm. These results demonstrate that HVEF treatment enhances soluble sugar accumulation during seed germination, regulating osmotic balance within the cells. Furthermore, SEM assessed maize microtissue morphology after chilling injury and HVEF treatment. Optimal HVEF treatment resulted in cell wall expansion, enhanced fiber elasticity, reduced interstitial spaces, and swollen cells, indicating improved hydrophilicity and protease activity. This study offers valuable insights into the mechanisms by which HVEF improves seed performance under low-temperature stress.https://doi.org/10.1038/s41598-025-88346-0MaizeSeed vigorChilling stressHigh-voltage electrostatic fieldSEM
spellingShingle Yao Lu
Yaoyao Li
Qian Peng
Xiangyun Sun
Qinglu Yang
Zhanhua Song
Fuyang Tian
Yinfa Yan
Mochen Liu
Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
Scientific Reports
Maize
Seed vigor
Chilling stress
High-voltage electrostatic field
SEM
title Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
title_full Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
title_fullStr Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
title_full_unstemmed Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
title_short Enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
title_sort enhancing maize seed resistance to chilling stress through seed germination and surface morphological changes using high voltage electrostatic field
topic Maize
Seed vigor
Chilling stress
High-voltage electrostatic field
SEM
url https://doi.org/10.1038/s41598-025-88346-0
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