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丛枝菌根共生体的主调控因子 RAM1 在番茄中具有双重调控作用。

A dual regulatory role for the arbuscular mycorrhizal master regulator RAM1 in tomato.

机构信息

Department of Soil and Plant Microbiology, Estación Experimental del Zaidín (EEZ), CSIC, Calle Profesor Albareda no. 1, 18008 Granada, Spain.

Czech Advanced Technology and Research Institute, Palacky University, Šlechtitelů 27, 78371 Olomouc, Czech Republic.

出版信息

J Exp Bot. 2024 Aug 28;75(16):5021-5036. doi: 10.1093/jxb/erae210.

Abstract

The REQUIRED FOR ARBUSCULAR MYCORRHIZATION1 (RAM1) transcription factor from the GRAS family is well known for its role as a master regulator of the arbuscular mycorrhizal (AM) symbiosis in dicotyledonous and monocotyledonous species, being essential in transcriptional reprogramming for the development and functionality of the arbuscules. In tomato, SlGRAS27 is the putative orthologue of RAM1 (here named SlRAM1), but has not yet been characterized. A reduced colonization of the root and impaired arbuscule formation were observed in SlRAM1-silenced plants, confirming the functional conservation of the RAM1 orthologue in tomato. However, unexpectedly, SlRAM1-overexpressing (UBIL:SlRAM1) plants also showed decreased mycorrhizal colonization. Analysis of non-mycorrhizal UBIL:SlRAM1 roots revealed an overall regulation of AM-related genes and a reduction of strigolactone biosynthesis. Moreover, external application of the strigolactone analogue GR244DO almost completely reversed the negative effects of SlRAM1 overexpression on the frequency of mycorrhization. However, it only partially recovered the pattern of arbuscule distribution observed in control plants. Our results strongly suggest that SlRAM1 has a dual regulatory role during mycorrhization and, in addition to its recognized action as a positive regulator of arbuscule development, it is also involved in different mechanisms for the negative regulation of mycorrhization, including the repression of strigolactone biosynthesis.

摘要

植物独脚金内酯信号途径负调控因子在菌根共生中的作用

植物独脚金内酯信号途径负调控因子(STRIGOLACTONE SIGNALING PATHWAY NEGATIVE REGULATOR,SMAX1)在豆科和禾本科植物的丛枝菌根(ARBUSCULAR MYCORRHIZA,AM)共生中作为一个主调控因子,对于丛枝的发育和功能的转录重编程是必需的,这一功能已得到广泛研究。在番茄中,SlGRAS27 是 RAM1 的假定同源物(此处命名为 SlRAM1),但尚未被鉴定。沉默 SlRAM1 的植株根的定殖减少,丛枝形成受损,这证实了 RAM1 同源物在番茄中的功能保守性。然而,出乎意料的是,SlRAM1 过表达(UBIL:SlRAM1)的植株也显示出较低的菌根定殖。对非菌根 UBIL:SlRAM1 根的分析表明,AM 相关基因的整体调控以及独脚金内酯生物合成减少。此外,独脚金内酯类似物 GR244DO 的外部应用几乎完全逆转了 SlRAM1 过表达对菌根定殖频率的负面影响。然而,它只部分恢复了在对照植物中观察到的丛枝分布模式。我们的结果强烈表明,SlRAM1 在菌根共生中具有双重调节作用,除了作为丛枝发育的正调控因子的公认作用外,它还参与了菌根负调控的不同机制,包括对独脚金内酯生物合成的抑制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69db/11349867/55ccea2c0c4e/erae210_fig1.jpg

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