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植物受体 D14 的结构同源物介导真菌病原体拟茎点霉对独脚金内酯的反应。

A structural homologue of the plant receptor D14 mediates responses to strigolactones in the fungal phytopathogen Cryphonectria parasitica.

机构信息

Dipartimento di Scienze della Vita e Biologia dei Sistemi, Università di Torino, Viale P.A. Mattioli 25, Torino, 10125, Italy.

Istituto per la Protezione Sostenibile delle Piante - CNR, Strada delle Cacce 73, 10135, Torino, Italy.

出版信息

New Phytol. 2022 May;234(3):1003-1017. doi: 10.1111/nph.18013. Epub 2022 Feb 26.

Abstract

Strigolactones (SLs) are plant hormones and important signalling molecules required to promote arbuscular mycorrhizal (AM) symbiosis. While in plants an α/β-hydrolase, DWARF14 (D14), was shown to act as a receptor that binds and cleaves SLs, the fungal receptor for SLs is unknown. Since AM fungi are currently not genetically tractable, in this study, we used the fungal pathogen Cryphonectria parasitica, for which gene deletion protocols exist, as a model, as we have previously shown that it responds to SLs. By means of computational, biochemical and genetic analyses, we identified a D14 structural homologue, CpD14. Molecular homology modelling and docking support the prediction that CpD14 interacts with and hydrolyses SLs. The recombinant CpD14 protein shows α/β hydrolytic activity in vitro against the SLs synthetic analogue GR24; its enzymatic activity requires an intact Ser/His/Asp catalytic triad. CpD14 expression in the d14-1 loss-of-function Arabidopsis thaliana line did not rescue the plant mutant phenotype. However, gene inactivation by knockout homologous recombination reduced fungal sensitivity to SLs. These results indicate that CpD14 is involved in SLs responses in C. parasitica and strengthen the role of SLs as multifunctional molecules acting in plant-microbe interactions.

摘要

独脚金内酯(SLs)是植物激素和重要的信号分子,对于促进丛枝菌根(AM)共生至关重要。虽然在植物中,一种α/β-水解酶 Dwarf14(D14)被证明作为受体,能够结合并切割 SLs,但真菌中 SLs 的受体尚不清楚。由于 AM 真菌目前在遗传上不可操作,因此在这项研究中,我们使用了真菌病原体 Cryphonectria parasitica 作为模型,因为我们之前已经证明它对 SLs 有反应,并且已经存在基因缺失方案。通过计算、生化和遗传分析,我们鉴定出一种 D14 结构同源物 CpD14。分子同源建模和对接支持这样的预测,即 CpD14 与 SLs 相互作用并水解它们。重组的 CpD14 蛋白在体外对 SLs 合成类似物 GR24 表现出 α/β 水解活性;其酶活性需要完整的 Ser/His/Asp 催化三联体。CpD14 在功能丧失的拟南芥 d14-1 缺失突变体中的表达未能挽救植物突变体表型。然而,通过同源重组敲除基因失活降低了真菌对 SLs 的敏感性。这些结果表明 CpD14 参与了 C. parasitica 中 SLs 的反应,并加强了 SLs 作为在植物-微生物相互作用中发挥多种功能的分子的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c534/9306968/18f1eed5dba0/NPH-234-1003-g001.jpg

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