J Plant Ecol ›› 2026, Vol. 19 ›› Issue (4): rtag083.DOI: 10.1093/jpe/rtag083

• Research Article •    

Differential responses of stomatal and leaf anatomical traits explain wheat cultivar sensitivity to ozone

Yanze Ma1, Rong Cao2, Evgenios Agathokleous1, 3, Yansen Xu1, 3, *, Longxin He1 and Zhaozhong Feng1, 3, *   

  1. 1Key Laboratory of Ecosystem Carbon Source and Sink, China Meteorological Administration (ECSS-CMA), School of Ecology and Applied Meteorology, Nanjing University of Information Science and Technology, Nanjing 210044, China
    2Institude of Soil Science, Chinese Academy of Sciences, Nanjing 211135, China
    3Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters (CIC-FEMD), Nanjing University of Information Science and Technology, Nanjing 210044, China
    *Corresponding authors. E-mails: yansenxu@nuist.edu.cn (Y.X.); zhaozhong.feng@nuist.edu.cn (Z.F.)
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (No. 42130714, W2532031 and 42207123).

气孔和叶片解剖特征的响应差异决定小麦品种对臭氧的敏感性

Abstract: Tropospheric ozone (O3) is a major air pollutant that threatens wheat production. However, the mechanisms underlying cultivar-specific responses remain unclear, particularly how stomatal traits and leaf structural characteristics contribute to differences in O3 sensitivity among cultivars. A field experiment was conducted using 13 winter wheat (Triticum aestivum L.) cultivars exposed to ambient (A-O3) or elevated (E-O3, 1.5 times A-O3) O3 treatment in a Free-Air O3-Concentration Enrichment system (O3-FACE). Elevated O3 significantly increased stomatal density on both adaxial and abaxial leaf surfaces, with a stronger response on the adaxial side, indicating independent regulation between surfaces. At the anthesis stage, stomatal and pore width significantly increased under E-O3, whereas their length was not affected. Elevated O3 significantly reduced adaxial epidermal thickness, abaxial epidermal thickness, mesophyll tissue thickness, and total leaf thickness during grain filling, with significant O3 × cultivar interactions for all traits except abaxial epidermal thickness. Cultivars were classified into sensitive, intermediate, and tolerant groups. Sensitive cultivars exhibited significant reductions in leaf structure, whereas tolerant cultivars largely maintained or even enhanced structural integrity. Overall, cultivar sensitivity to O3 was not directly associated with stomatal traits but rather with the ability to preserve leaf anatomy. These findings suggest that maintaining flag leaf structure is critical for improving wheat resilience to rising O3 levels.

This study demonstrates that wheat cultivar sensitivity to O3 is primarily determined by the capacity to maintain leaf anatomical integrity, providing a mechanistic basis for selecting O3-tolerant cultivars.

Key words: ozone, wheat, stomatal density, stomatal distribution, leaf structure

摘要:
对流层臭氧(O3)是一种重要的大气污染物,对小麦(Triticum aestivum L.)产量构成严重威胁。然 而,不同小麦品种对O3的敏感性的差异机制,尤其是气孔特征和叶片结构在其中的作用尚不明确。本 研究基于野外开放式O3浓度增加(O3-FACE)实验平台,揭示了臭氧浓度升高(E-O3,约为环境浓度的1.5 倍)对13个冬小麦品种气孔和叶片解剖特征的影响。结果显示, E-O3显著增加了叶片上表面和下表面的气孔密度,且其中上表面的响应更为显著,表明叶片两侧的气孔调控相互独立。在扬花期, E-O3显著增 加了气孔宽度和气孔空隙宽度,但对气孔长度和气孔空隙长度没有显著影响。在灌浆期, O3浓度升高 显著降低了叶片上表皮、下表皮、叶肉组织及叶片总厚度,除下表皮厚度外, O3与品种交互对其余性 状的影响均显著。根据对E-O3的敏感性,本研究将小麦品种分为敏感性、中间型和抗性。其中,敏感性 品种的叶片结构显著受损,而抗性品种的叶片结构则基本保持完整,甚至有所增强。总体来看,小麦品 种对O3的敏感性与气孔性状没有直接关联,而更多取决于其维持叶片解剖结构的能力。这些结果表 明, O3胁迫条件下保持其叶结构稳定对于提高小麦对O3胁迫的适应能力具有重要意义。

关键词: 臭氧, 小麦, 气孔密度, 气孔分布, 叶片结构