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应用生态学报 ›› 2026, Vol. 37 ›› Issue (4): 1111-1118.doi: 10.13287/j.1001-9332.202604.013

• 研究论文 • 上一篇    下一篇

小麦节间伸长期渍水对茎秆生长和抗倒性能的影响

桂林森1, 姜啸意1, 李亦辰1, 李春燕1,2, 朱敏1,2, 朱新开1,2, 郭文善1,2, 丁锦峰1,2*   

  1. 1江苏省作物遗传生理重点实验室/江苏省作物栽培生理重点实验室/扬州大学小麦研究中心/扬州大学农学院, 江苏扬州 225009;
    2扬州大学江苏省粮食作物现代产业技术协同创新中心, 江苏扬州 225009
  • 收稿日期:2025-08-26 修回日期:2026-02-15 出版日期:2026-04-18 发布日期:2026-05-29
  • 通讯作者: *E-mail: jfdin@yzu.edu.cn
  • 作者简介:桂林森, 男, 2000年生, 硕士研究生。主要从事小麦抗逆稳产栽培研究。E-mail: gls2026@163.com
  • 基金资助:
    国家自然科学基金项目(32071953)和江苏省碳达峰碳中和科技创新专项资金揭榜挂帅项目(BE2023400)

Effects of waterlogging at internode elongation stage on stem growth and lodging resistance of wheat

GUI Linsen1, JIANG Xiaoyi1, LI Yichen1, LI Chunyan1,2, ZHU Min1,2, ZHU Xinkai1,2, GUO Wenshan1,2, DING Jinfeng1,2*   

  1. 1Key Laboratory of Crop Genetics and Physiology of Jiangsu Province/Key Laboratory of Crop Cultivation and Physiology of Jiangsu Province/Wheat Research Center, Yangzhou University/College of Agriculture, Yangzhou University, Yangzhou 225009, Jiangsu, China;
    2Jiangsu Collaborative Innovation Center for Modern Grain Industry Technology, Yangzhou University, Yangzhou 225009, Jiangsu, China
  • Received:2025-08-26 Revised:2026-02-15 Online:2026-04-18 Published:2026-05-29

摘要: 明确小麦节间伸长期渍水对茎秆生长和抗倒性能的影响,有助于深化对小麦渍害和倒伏发生机制的理解,可为小麦抗逆稳产提供支撑。本研究以扬麦25为供试材料,分别在基部第Ⅰ节间(B1)、第Ⅱ节间(B2)、第Ⅲ节间(B3)、第Ⅳ节间(B4)和第Ⅴ节间(B5)伸长1 cm开始持续7 d的渍水处理,以不渍水处理为对照(CK),研究渍水胁迫对开花期和乳熟期小麦节间形态指标和力学指标的影响。结果表明:与CK相比,渍水处理显著抑制了小麦植株未定长节间(未完全伸长到最终长度的节间)的伸长,导致乳熟期株高和重心高度下降,B2处理下株高和重心高度降幅最高,分别达9.5%和8.4%;显著降低了开花期和乳熟期第Ⅱ、Ⅲ、Ⅳ、Ⅴ节间外径和壁厚;减少了开花期各个节间的充实度。渍水处理显著降低了开花期和乳熟期各节间的弯曲力矩;不同程度减小了开花期和乳熟期各节间的抗折力,其中B1和B2处理显著降低了所有节间的抗折力,B4和B5处理则主要降低了上部节间抗折力,不同处理下第Ⅱ节间(倒伏发生的主要节间)抗折力表现为B2<B1<B3<B4<B5<CK。B1、B2和B3处理显著增加了第Ⅰ、Ⅱ、Ⅲ节间倒伏指数,而B4和B5处理影响不显著。基部第Ⅱ节间形态与抗倒性能间的相关分析表明,改善节间外径和壁厚能够显著提升抗折力、降低倒伏指数。综上,小麦节间伸长期遭遇渍水胁迫,会抑制节间伸长、增粗和增厚,进而劣化节间结构、降低抗折力、增加倒伏风险,其中以基部Ⅰ、Ⅱ节间伸长期渍水受影响最显著。

关键词: 小麦, 节间, 渍水胁迫, 生长, 抗倒性能

Abstract: Elucidating the effects of waterlogging during internode elongation stage on stem growth and lodging resistance of wheat can provide comprehensive understanding of the mechanisms underlying waterlogging damage and lodging, which will benefit the stress-resistant and stable wheat production. We examined the effects of waterlogging stress on internode morphological and mechanical indicators at the flowering and milking stages of Yangmai 25. Waterlogging treatments were applied from the initiation of 1 cm elongation in the basal 1st (B1), 2nd (B2), 3rd (B3), 4th (B4), and 5th (B5) internodes, which lasted for 7 days each. The non-waterlogging treatment (CK) was used as the control. The results showed that waterlogging treatments significantly inhibited the elongation of undetermined internodes (internode not fully elongated to final length), and thus reduced plant height and center cgravity height at the milking stage. The B2 treatment resulted in the greatest decreases in plant height and center cgravity height, reaching 9.5% and 8.4%, respectively. Waterlogging significantly reduced the outer diameter and wall thickness of the 2nd, 3rd, 4th, and 5th internodes at both the flowering and milking stages, and decreased the filling degree of each internode at the flowering stage. Furthermore, waterlogging treatments significantly reduced the bending moment of each internode at the flowering and milking stages, and decreased the breaking resistance of internodes across stages. Specifically, B1 and B2 treatments significantly reduced the breaking resistance of all internodes, while B4 and B5 treatments mainly reduced the breaking resistance of upper internodes. The breaking resistance of the second internode (the main internode responsible for lodging) under different treatments followed the order: B2<B1<B3<B4<B5<CK. Treatments B1, B2, and B3 significantly increased the lodging index of the 1st, 2nd, and 3rd internodes, whereas no significant effects were found under B4 and B5 treatments. Linear correlation analysis of the morphology and lodging resistance of the basal 2nd internode indicated that improving the outer diameter and wall thickness of internodes could significantly enhance breaking resistance and reduce the lodging index. In summary, waterlogging stress during the internode elongation stage of wheat inhibited internode elongation, thickening, and wall development, thereby deteriorating internode structure, reducing breaking resistance, and increasing lodging risk. The most pronounced effects were observed during the elongation of the basal first and second internodes.

Key words: wheat, internode, waterlogging stress, growth, lodging resistance