60 Hz非均匀电磁场对盐胁迫下番茄种子萌发、光合作用及幼苗生长的影响

IF 1.8 3区 生物学 Q3 BIOLOGY
Elizabeth Isaac Alemán, Rangel Sierra Díaz, Albys Ferrer Dubois, Yilan Fung Boix, Jorge González Aguilera, Alan Mario Zuffo, Fábio Steiner
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引用次数: 0

摘要

60 Hz非均匀电磁场(EMFs)对番茄(cv。在盐胁迫和实验室条件下,研究了种子萌发、光合作用和幼苗生长情况。研究了不同盐胁迫水平(0、40、60、80和100 mM NaCl)对番茄种子的影响,选择100 mM NaCl水平,研究了电磁场对番茄幼苗萌发、生理和生长的影响。在第二个实验中,将未经处理的种子和经过2、4和6 mT非均匀电磁场处理9 min的种子暴露于100 mM NaCl盐溶液(SS)中。第一次生物试验结果表明,与对照处理相比,添加SS显著降低了番茄种子的发芽率(67%)、平均发芽时间(54%)、平均发芽速度(69%)、发芽率指数(39%)和发芽活力(78%)。在2个试验中,用2或4 mT的电磁场预处理9 min后,番茄种子在SS胁迫下发芽率显著提高(224% ~ 226%),发芽率显著提高(128% ~ 151%)。盐胁迫显著降低了番茄种子的萌发,而60 Hz非均匀电磁场诱导番茄种子在盐胁迫下的缓解反应,以促进萌发、光合作用和幼苗生长。在盐度胁迫下,4mT、9min的60 Hz非均匀电磁场表现出最好的生物响应。利用电磁场对番茄种子进行盐胁迫保护。生物电磁学。00:00- 00,2024。©2024生物电磁学学会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of 60 Hz Non- Uniform Electromagnetic Fields on Tomato (cv L-05) Seed Germination, Photosynthesis and Seedling Growth Under Salt Stress Conditions

Effects of 60 Hz non-uniform electromagnetic fields (EMFs) on the tomato (cv. L-05) seed germination, photosynthesis, and seedling growth under salt stress and laboratory conditions were investigated. A previous trial investigated the impact of salt stress levels (0, 40, 60, 80, and 100 mM NaCl) on tomato seeds, and the 100 mM NaCl level was selected to study the effects of EMFs in attenuating salinity stress on germination, physiology, and growth of tomato seedlings. In the second experiment, untreated seeds and seeds treated with nonuniform EMFs of 2, 4 and 6 mT for 9 min were exposed to a 100 mM NaCl saline solution (SS). The results of the first bioassay showed that the addition of SS drastically reduced the germination percentage (67%), mean germination time (54%), mean germination speed (69%), germination rate index (39%), and germination vigor (78%) of tomato seeds when compared to the control treatment. In the second experimental trial, the effect of pretreatment of tomato seeds with EMFs of 2 or 4 mT for 9 min exposed to SS stress revealed a significant increase in the germination percentage (224%–226%) and germination rate (128%–151%). Salinity stress drastically reduced the tomato seed germination while 60 Hz nonuniform EMFs induced a mitigating response of tomato seeds under salinity stress to improve the germination, photosynthesis, and seedling growth. The 60 Hz nonuniform EMFs of 4mT for 9 min showed the best biological responses under salinity stress. Applied EMFs to tomato seeds protect tomato plants under salinity stress. Bioelectromagnetics. 00:00–00, 2024. © 2024 Bioelectromagnetics Society.

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来源期刊
Bioelectromagnetics
Bioelectromagnetics 生物-生物物理
CiteScore
4.60
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Bioelectromagnetics is published by Wiley-Liss, Inc., for the Bioelectromagnetics Society and is the official journal of the Bioelectromagnetics Society and the European Bioelectromagnetics Association. It is a peer-reviewed, internationally circulated scientific journal that specializes in reporting original data on biological effects and applications of electromagnetic fields that range in frequency from zero hertz (static fields) to the terahertz undulations and visible light. Both experimental and clinical data are of interest to the journal''s readers as are theoretical papers or reviews that offer novel insights into or criticism of contemporary concepts and theories of field-body interactions. The Bioelectromagnetics Society, which sponsors the journal, also welcomes experimental or clinical papers on the domains of sonic and ultrasonic radiation.
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