School of Life Sciences, Anhui University, Hefei, Anhui, China.
PLoS One. 2012;7(11):e49421. doi: 10.1371/journal.pone.0049421. Epub 2012 Nov 14.
Arabidopsis thaliana vegetative storage proteins, VSP1 and VSP2, are acid phosphatases and belong to the haloacid dehalogenase (HAD) superfamily. In addition to their potential nutrient storage function, they were thought to be involved in plant defense and flower development. To gain insights into the architecture of the protein and obtain clues about its function, we have tested their substrate specificity and solved the structure of VSP1. The acid phosphatase activities of these two enzymes require divalent metal such as magnesium ion. Conversely, the activity of these two enzymes is inhibited by vanadate and molybdate, but is resistant to inorganic phosphate. Both VSP1 and VSP2 did not exhibit remarkable activities to any physiological substrates tested. In the current study, we presented the crystal structure of recombinant VSP1 at 1.8 Å resolution via the selenomethionine single-wavelength anomalous diffraction (SAD). Specifically, an α-helical cap domain on the top of the α/β core domain is found to be involved in dimerization. In addition, despite of the low sequence similarity between VSP1 and other HAD enzymes, the core domain of VSP1 containing conserved active site and catalytic machinery displays a classic haloacid dehalogenase fold. Furthermore, we found that VSP1 is distinguished from bacterial class C acid phosphatase P4 by several structural features. To our knowledge, this is the first study to reveal the crystal structure of plant vegetative storage proteins.
拟南芥营养贮藏蛋白 VSP1 和 VSP2 是酸性磷酸酶,属于卤代酸脱卤酶(HAD)超家族。除了具有潜在的营养储存功能外,它们还被认为参与植物防御和花发育。为了深入了解蛋白质的结构并获得其功能的线索,我们测试了它们的底物特异性并解决了 VSP1 的结构。这两种酶的酸性磷酸酶活性需要二价金属离子,如镁离子。相反,这两种酶的活性被钒酸盐和钼酸盐抑制,但对无机磷酸盐有抗性。VSP1 和 VSP2 对测试的任何生理底物均未表现出显著的活性。在本研究中,我们通过硒代蛋氨酸单波长反常散射(SAD)以 1.8Å 的分辨率呈现了重组 VSP1 的晶体结构。具体来说,在α/β核心域顶部的一个α-螺旋帽结构域被发现参与二聚化。此外,尽管 VSP1 与其他 HAD 酶之间的序列相似性较低,但包含保守活性位点和催化机制的 VSP1 核心域显示出经典的卤代酸脱卤酶折叠。此外,我们发现 VSP1 与细菌 C 类酸性磷酸酶 P4 有几个结构特征不同。据我们所知,这是首次揭示植物营养贮藏蛋白的晶体结构。