Huo Liuqing, Guo Zijian, Wang Qi, Jia Xin, Sun Xuepeng, Ma Fengwang
Collaborative Innovation Center for Efficient and Green Production of Agriculture in Mountainous Areas of Zhejiang Province, Key Laboratory of Quality and Safety Control for Subtropical Fruit and Vegetable, Ministry of Agriculture and Rural Affairs, College of Horticulture Science, Zhejiang A&F University, Hangzhou 311300, Zhejiang, China.
State Key Laboratory of Crop Stress Biology for Arid Areas/Shaanxi Key Laboratory of Apple, College of Horticulture, Northwest A&F University, Yangling, Shaanxi 712100, China.
Ecotoxicol Environ Saf. 2022 Apr 1;234:113398. doi: 10.1016/j.ecoenv.2022.113398. Epub 2022 Mar 9.
Autophagy is a conserved degradation pathway in plants, which plays an important role in plant cellular homeostasis during abiotic stress. Although various abiotic stressors have been reported to induce autophagic activity in plants, the specific role of autophagy in plant cadmium (Cd) tolerance remains undiscovered. In this study, we treated three MdATG10-overexpressing apple lines with hydroponic Cd stress and found the enhanced Cd tolerance in transgenic plants. Transgenic apple plants exhibited less growth limitation and reduced Cd damage on the photosynthetic system. That was accompanied by higher antioxidant enzymes activity and lower harmful ROS accumulation in apple leaves under Cd stress. The higher autophagic activity led to a more active metabolic system of Pro, His, and Arg in transgenic plants under Cd stress, which was closely related to the plant Cd tolerance. In addition, the transcriptional activities of several Cd transport and detoxification-related genes were regulated by MdATG10-overexpression in response to Cd stress. This study is the first to demonstrate the protective role of autophagy in the Cd tolerance of plants.
自噬是植物中一种保守的降解途径,在非生物胁迫期间对植物细胞内稳态起着重要作用。尽管已有报道称各种非生物胁迫因素可诱导植物的自噬活性,但自噬在植物镉(Cd)耐受性中的具体作用仍未被发现。在本研究中,我们用水培镉胁迫处理了三个过表达MdATG10的苹果株系,发现转基因植物对镉的耐受性增强。转基因苹果植株的生长受限较少,光合系统受到的镉损伤减轻。这伴随着镉胁迫下苹果叶片中抗氧化酶活性较高和有害活性氧积累较低。较高的自噬活性导致镉胁迫下转基因植物中脯氨酸、组氨酸和精氨酸的代谢系统更活跃,这与植物对镉的耐受性密切相关。此外,响应镉胁迫,几个与镉转运和解毒相关基因的转录活性受到MdATG10过表达的调控。本研究首次证明了自噬在植物镉耐受性中的保护作用。