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丛枝菌根真菌和磷对干旱诱导的氧化应激及[具体植物名称]14-3-3蛋白基因表达的影响

Effect of arbuscular mycorrhizal fungi and phosphorus on drought-induced oxidative stress and 14-3-3 proteins gene expression of .

作者信息

Han Yanyan, Zhang Wenrui, Xu Tingying, Tang Ming

机构信息

College of Forestry, Northwest A&F University, Xianyang, China.

Boone Pickens School of Geology, Oklahoma State University, Stillwater, OK, United States.

出版信息

Front Microbiol. 2022 Aug 11;13:934964. doi: 10.3389/fmicb.2022.934964. eCollection 2022.

Abstract

The application of arbuscular mycorrhizal fungi (AM fungi) and phosphorus (P) can improve plant growth under drought stress by upregulating the antioxidant system and osmotic accumulation. The 14-3-3 protein can respond to different abiotic stresses such as low P and drought. The purpose of this experiment was to study the effects of AM fungi () inoculation on reactive oxygen species (ROS) homeostasis, P metabolism, and 14-3-3 gene expression of at different P levels and drought stress (WW: well-watered and WD: water deficit). Under WD conditions, AM fungi inoculation significantly increased the P content in leaves and roots, but the benefit in roots is limited by the level of P addition, and the roots may have more alkaline phosphatase and phytase under P stress, and these activities in the rhizosphere soil inoculated with AM fungi were stronger. Under WD conditions, the activities of catalase (leaf and root) and peroxidase (root) inoculated with AM fungi were significantly higher than those without inoculation and decreased with P addition. 14-3-3 genes, and , have a positive correlation with the antioxidant system, osmotic regulation, and P metabolism, which may be more significant after inoculation with AM fungi. Our results provide new insights into the mechanism of ROS homeostasis and P metabolism in mycorrhizal plants under drought stress.

摘要

丛枝菌根真菌(AM真菌)和磷(P)的施用可通过上调抗氧化系统和渗透物质积累来改善干旱胁迫下植物的生长。14-3-3蛋白可响应不同的非生物胁迫,如低磷和干旱。本实验的目的是研究在不同磷水平和干旱胁迫(WW:充分浇水和WD:水分亏缺)下,接种AM真菌对番茄活性氧(ROS)稳态、磷代谢和14-3-3基因表达的影响。在水分亏缺条件下,接种AM真菌显著增加了叶片和根系中的磷含量,但根系的受益程度受施磷水平的限制,并且在磷胁迫下根系可能具有更多的碱性磷酸酶和植酸酶,接种AM真菌的根际土壤中这些酶的活性更强。在水分亏缺条件下,接种AM真菌的过氧化氢酶(叶片和根系)和过氧化物酶(根系)活性显著高于未接种的,且随施磷量增加而降低。14-3-3基因,Le14-3-3a和Le14-3-3f,与抗氧化系统、渗透调节和磷代谢呈正相关,接种AM真菌后可能更显著。我们的结果为干旱胁迫下菌根植物中ROS稳态和磷代谢机制提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79a8/9403482/55bc29edb589/fmicb-13-934964-g001.jpg

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