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脂寡糖的动力学校对决定共生植物受体的信号激活。

Kinetic proofreading of lipochitooligosaccharides determines signal activation of symbiotic plant receptors.

机构信息

Department of Molecular Biology and Genetics, Aarhus University 8000 Aarhus C, Denmark.

Department of Chemistry, University of Copenhagen 1871 Frederiksberg, Denmark.

出版信息

Proc Natl Acad Sci U S A. 2021 Nov 2;118(44). doi: 10.1073/pnas.2111031118.

Abstract

Plants and animals use cell surface receptors to sense and interpret environmental signals. In legume symbiosis with nitrogen-fixing bacteria, the specific recognition of bacterial lipochitooligosaccharide (LCO) signals by single-pass transmembrane receptor kinases determines compatibility. Here, we determine the structural basis for LCO perception from the crystal structures of two lysin motif receptor ectodomains and identify a hydrophobic patch in the binding site essential for LCO recognition and symbiotic function. We show that the receptor monitors the composition of the amphiphilic LCO molecules and uses kinetic proofreading to control receptor activation and signaling specificity. We demonstrate engineering of the LCO binding site to fine-tune ligand selectivity and correct binding kinetics required for activation of symbiotic signaling in plants. Finally, the hydrophobic patch is found to be a conserved structural signature in this class of LCO receptors across legumes that can be used for in silico predictions. Our results provide insights into the mechanism of cell-surface receptor activation by kinetic proofreading of ligands and highlight the potential in receptor engineering to capture benefits in plant-microbe interactions.

摘要

植物和动物利用细胞表面受体来感知和解释环境信号。在豆科植物与固氮细菌的共生关系中,单次跨膜受体激酶对细菌脂寡糖(LCO)信号的特异性识别决定了兼容性。在这里,我们通过两个赖氨酸基序受体外域的晶体结构确定了 LCO 感知的结构基础,并确定了结合位点中的疏水区对于 LCO 识别和共生功能是必不可少的。我们表明,受体监测两亲性 LCO 分子的组成,并利用动力学校正在控制受体激活和信号特异性。我们证明了对 LCO 结合位点的工程改造可以微调配体选择性,并纠正植物共生信号激活所需的结合动力学。最后,发现疏水区是该类 LCO 受体在豆科植物中的保守结构特征,可以用于计算预测。我们的研究结果为配体动力学校正在细胞表面受体激活中的作用机制提供了新的见解,并突出了受体工程在捕获植物-微生物相互作用中的益处的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf4c/8612216/71db76b972fe/pnas.2111031118fig01.jpg

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