Chen Haiyang, Zhang Shuaitao, Chang Jianbo, Wei Hongru, Li Hongchen, Li Chaoyang, Yang Junjie, Song Zhengxiong, Wang Zhaojun, Lun Jin, Zhang Xuelin, Li Lihua, Zhang Xiaoquan
College of Tobacco Science, Henan Agricultural University, Zhengzhou, 450002, China.
Postdoctoral Station of Crop Science, Henan Agricultural University, Zhengzhou, 450046, China.
BMC Plant Biol. 2025 Jan 20;25(1):77. doi: 10.1186/s12870-025-06080-1.
Low temperatures disrupt nitrogen metabolism in tobacco, resulting in lower nicotine content in the leaves. 24-epibrassinolide (EBR) is a widely used plant growth regulator known for its roles in enhancing cold tolerance and nitrogen metabolism. Nevertheless, it remains unclear whether EBR enhances leaf nicotine content under low temperature conditions during the mature stage of flue-cured tobacco.
To investigate the effects of EBR on leaf nicotine content under low temperature conditions during the mature stage of 'Yunyan 87' flue-cured tobacco, four treatments (foliar spraying of 0, 0.1, 0.2 and 0.4 mg·L EBR solutions) were performed by using a single-factor randomized complete block design. The result showed that foliar spraying of different concentrations of EBR notably improve the agronomic and economic traits of flue-cured tobacco to varying degrees, as well as increase the total nitrogen and nicotine content in the tobacco leaves. 0.2 mg·L EBR treatment showed better results, with nicotine content in the middle and upper leaves after curing increasing by 11.11% and 19.90%, respectively, compared to CK. Compared to the single EBR, foliar spraying of EBR compound containing α-Cyclodextrin and Tween 80 prolongs the effect of EBR, promotes the growth and development of tobacco plants. Combining EBR with CaCl and ZnSO·7HO significantly enhances the cold resistance of tobacco plants. Furthermore, combining EBR with higher concentrations of KHPO is more effective in promoting the maturation and yellowing of the upper leaves than those with lower concentrations.
This study provides new insights that foliar application of EBR enhances leaf nicotine content under low temperature conditions during the mature stage of flue-cured tobacco by regulating cold stress tolerance. The integration of EBR with α-Cyclodextrin, Tween 80, CaCl, ZnSO·7HO and KHPO showcases a novel approach to extending the effectiveness of plant growth regulators and improving agricultural sustainability. Furthermore, these findings may be applicable to other cold-sensitive crops, offering broader benefits for improving resilience and productivity under low temperatures. However, the research focuses on two growth cycles, without investigating the long-term impact of EBR on soil health, crop sustainability, and ecosystem. And further research is needed to elucidate the molecular mechanisms of EBR on enhancing leaf nicotine content.
Not applicable.
低温会扰乱烟草中的氮代谢,导致叶片中尼古丁含量降低。24-表油菜素内酯(EBR)是一种广泛使用的植物生长调节剂,以其在增强耐寒性和氮代谢方面的作用而闻名。然而,在烤烟成熟阶段的低温条件下,EBR是否能提高叶片尼古丁含量仍不清楚。
为了研究EBR对‘云烟87’烤烟成熟阶段低温条件下叶片尼古丁含量的影响,采用单因素随机完全区组设计进行了四种处理(叶面喷施0、0.1、0.2和0.4 mg·L EBR溶液)。结果表明,叶面喷施不同浓度的EBR能不同程度地显著改善烤烟的农艺和经济性状,同时增加烟叶中的总氮和尼古丁含量。0.2 mg·L EBR处理效果较好,烘烤后中部和上部叶片的尼古丁含量分别比对照增加了11.11%和19.90%。与单一EBR相比,叶面喷施含有α-环糊精和吐温80的EBR复合物可延长EBR的作用效果,促进烟草植株的生长发育。将EBR与CaCl和ZnSO·7H₂O结合使用可显著增强烟草植株的抗寒性。此外,将EBR与较高浓度的KH₂PO₄结合使用比与较低浓度的KH₂PO₄结合使用更有效地促进上部叶片的成熟和变黄。
本研究提供了新的见解,即叶面喷施EBR通过调节低温胁迫耐受性,在烤烟成熟阶段的低温条件下提高叶片尼古丁含量。EBR与α-环糊精、吐温80、CaCl、ZnSO·7H₂O和KH₂PO₄的整合展示了一种延长植物生长调节剂有效性和提高农业可持续性的新方法。此外,这些发现可能适用于其他对冷敏感的作物,为提高低温下的恢复力和生产力带来更广泛的益处。然而,该研究集中在两个生长周期,未研究EBR对土壤健康、作物可持续性和生态系统的长期影响。需要进一步研究以阐明EBR提高叶片尼古丁含量的分子机制。
不适用。