Department of Agricultural Sciences, Biotechnology and Food Science, Cyprus University of Technology, Limassol, 3603, Cyprus.
Department of Agricultural Sciences, Biotechnology and Food Science, Cyprus University of Technology, Limassol, 3603, Cyprus.
J Hazard Mater. 2019 Apr 15;368:584-593. doi: 10.1016/j.jhazmat.2019.01.058. Epub 2019 Jan 22.
Copper is essential for plant growth, but in excess may cause adverse effects on plant physiology. Harmful effects are also caused by plant exposure to salinity (NaCl) due to the excessive use of fertilizers, soil degradation and/or the quality of the water used for irrigation. The impact of single and combined salinity (Sal) and copper (Cu) stress on spearmint metabolism were studied in hydroponics. Spearmint plants (Mentha spicata L.) were subjected to salinity stress (150 mM NaCl) and/or excessive Cu concentration (60 μM Cu) via the nutrient solution. Not only Sal and Cu, but also their combination suppressed plant growth by decreasing plant biomass, root fresh weight and plant height. Chlorophyll content decreased mainly for the combined stress treatment (Sal + Cu). Polyphenols and antioxidants (FRAP, DPPH, ABTS) increased in single stress treatments (Sal or Cu), but decreased in the combined stress (Sal + Cu). The application of Sal or Cu stress decreased Zn, N and K (leaves), K, Ca, P and Mg (roots) content. Copper application increased Ca and Mg in leaves. In conclusion, salinity stress and Cu exposure may change the primary metabolic pathways in favor of major volatile oil components biosynthesis, resulting in significant changes of essential oil yield and composition.
铜是植物生长所必需的,但过量可能会对植物生理产生不利影响。由于过度使用化肥、土壤退化和/或灌溉用水的质量,植物暴露在盐度(NaCl)下也会造成有害影响。本研究采用水培法研究了单一和复合盐度(Sal)和铜(Cu)胁迫对留兰香代谢的影响。通过营养液,将留兰香植物(Mentha spicata L.)暴露于盐度胁迫(150 mM NaCl)和/或过量 Cu 浓度(60 μM Cu)下。不仅 Sal 和 Cu,而且它们的组合通过降低植物生物量、根鲜重和株高来抑制植物生长。叶绿素含量主要因复合胁迫处理(Sal + Cu)而降低。多酚和抗氧化剂(FRAP、DPPH、ABTS)在单一胁迫处理(Sal 或 Cu)中增加,但在复合胁迫(Sal + Cu)中减少。Sal 或 Cu 胁迫的应用降低了叶片中的 Zn、N 和 K(叶片)、K、Ca、P 和 Mg(根系)含量。铜的应用增加了叶片中的 Ca 和 Mg。总之,盐度胁迫和 Cu 暴露可能会改变主要代谢途径,有利于主要挥发性油成分的生物合成,从而导致精油产量和成分发生显著变化。