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乙烯植物激素受体结晶——结构筛选。

Crystallization of Ethylene Plant Hormone Receptor-Screening for Structure.

机构信息

Institute of Biochemical Plant Physiology, Faculty of Mathematics and Natural Sciences, Heinrich Heine University Düsseldorf, 40204 Düsseldorf, Germany.

出版信息

Biomolecules. 2024 Mar 20;14(3):375. doi: 10.3390/biom14030375.

Abstract

The plant hormone ethylene is a key regulator of plant growth, development, and stress adaptation. Many ethylene-related responses, such as abscission, seed germination, or ripening, are of great importance to global agriculture. Ethylene perception and response are mediated by a family of integral membrane receptors (ETRs), which form dimers and higher-order oligomers in their functional state as determined by the binding of Cu(I), a cofactor to their transmembrane helices in the ER-Golgi endomembrane system. The molecular structure and signaling mechanism of the membrane-integral sensor domain are still unknown. In this article, we report on the crystallization of transmembrane (TM) and membrane-adjacent domains of plant ethylene receptors by Lipidic Cubic Phase (LCP) technology using vapor diffusion crystallization. The TM domain of ethylene receptors ETR1 and ETR2, which is expressed in in high quantities and purity, was successfully crystallized using the LCP approach with different lipids, lipid mixtures, and additives. From our extensive screening of 9216 conditions, crystals were obtained from identical crystallization conditions for ETR1 (aa 1-316) and ETR2 (aa 1-186), diffracting at a medium-high resolution of 2-4 Å. However, data quality was poor and not sufficient for data processing or further structure determination due to rotational blur and high mosaicity. Metal ion loading and inhibitory peptides were explored to improve crystallization. The addition of Zn(II) increased the number of well-formed crystals, while the addition of ripening inhibitory peptide NIP improved crystal morphology. However, despite these improvements, further optimization of crystallization conditions is needed to obtain well-diffracting, highly-ordered crystals for high-resolution structural determination. Overcoming these challenges will represent a major breakthrough in structurally determining plant ethylene receptors and promote an understanding of the molecular mechanisms of ethylene signaling.

摘要

植物激素乙烯是植物生长、发育和应激适应的关键调节剂。许多与乙烯相关的反应,如脱落、种子萌发或成熟,对全球农业都非常重要。乙烯的感知和反应是由一系列整合膜受体(ETRs)介导的,这些受体在其功能状态下形成二聚体和更高阶的寡聚体,其功能状态由 Cu(I)结合到它们在 ER-Golgi 内质网膜系统中的跨膜螺旋来决定。膜整合传感器结构域的分子结构和信号转导机制仍不清楚。在本文中,我们报告了使用脂质立方相(LCP)技术通过气相扩散结晶对植物乙烯受体的跨膜(TM)和膜旁结构域进行结晶。使用 LCP 方法,用不同的脂质、脂质混合物和添加剂成功地表达和纯化了乙烯受体 ETR1 和 ETR2 的 TM 结构域。从我们对 9216 种条件的广泛筛选中,从相同的结晶条件下获得了 ETR1(aa 1-316)和 ETR2(aa 1-186)的晶体,分辨率在中等至较高的 2-4 Å之间。然而,由于旋转模糊和高镶嵌性,数据质量较差,不足以进行数据处理或进一步的结构确定。金属离子加载和抑制肽被探索用于改善结晶。Zn(II)的添加增加了形成良好的晶体数量,而成熟抑制肽 NIP 的添加改善了晶体形态。然而,尽管有这些改进,仍需要进一步优化结晶条件,以获得具有良好衍射性和高度有序性的晶体,用于高分辨率结构测定。克服这些挑战将是在结构上确定植物乙烯受体方面的重大突破,并促进对乙烯信号转导分子机制的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c8d/10968091/3d674efe87dc/biomolecules-14-00375-g001.jpg

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