Li Xin-Yu, Lin Mei-Lan, Lu Fei, Zhou Xin, Xiong Xing, Chen Li-Song, Huang Zeng-Rong
College of Resources and Environment, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
Key Lab of Soil Ecosystem Health and Regulation, Fujian Province University (Fujian Agriculture and Forestry University), Fuzhou 350002, China.
Plants (Basel). 2023 Jan 11;12(2):351. doi: 10.3390/plants12020351.
Over-applied copper (Cu)-based agrochemicals are toxic to citrus trees. However, less information is available discussing the ultrastructural alterations in Cu-stressed citrus species. In the present study, seedlings of and that differed in Cu-tolerance were sandy-cultured with nutrient solution containing 0.5 µM Cu (as control) or 300 µM Cu (as Cu toxicity) for 18 weeks. At the end of the treatments, the physiological parameters and ultrastructural features of the citrus leaves and roots were analyzed. The results indicate that Cu toxicity significantly decreased the ratio of shoot biomass to dry weight, the Cu translocation factor and the total chlorophyll of two citrus species. The anatomical and ultrastructural alterations verified that excessive Cu resulted in starch granules accumulated in the leaves and roots of the two citrus species. Under Cu toxicity, increased root flocculent precipitate and thickened root cell wall might reduce the Cu translocation from citrus roots to the shoots. Compared with , maintained a relatively integral root cellular structure under Cu toxicity, which provided a structural basis for a higher Cu tolerance than . The present results increase our understanding of the physiological and ultrastructural responses to Cu toxicity in citrus species.
过量施用的铜基农用化学品对柑橘树有毒害作用。然而,关于铜胁迫下柑橘品种超微结构变化的信息较少。在本研究中,将耐铜性不同的两种柑橘幼苗在含有0.5 μM铜(作为对照)或300 μM铜(作为铜毒性处理)的营养液中沙培18周。处理结束时,分析了柑橘叶片和根系的生理参数及超微结构特征。结果表明,铜毒性显著降低了两种柑橘品种的地上部生物量与干重之比、铜转运系数和总叶绿素含量。解剖学和超微结构变化证实,过量的铜导致两种柑橘品种的叶片和根系中淀粉粒积累。在铜毒性条件下,根系絮状沉淀物增加和根细胞壁增厚可能会减少铜从柑橘根系向地上部的转运。与[品种名称1]相比,[品种名称2]在铜毒性条件下保持了相对完整的根细胞结构,这为其比[品种名称1]具有更高的耐铜性提供了结构基础。本研究结果增进了我们对柑橘品种对铜毒性的生理和超微结构响应的理解。