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大豆中缺乏对内切-β-葡聚糖酶抑制活性的木葡聚糖特异性内切-β-1,4-葡聚糖酶抑制剂蛋白样的基本 7S 球蛋白的晶体结构

Crystal structure of basic 7S globulin, a xyloglucan-specific endo-β-1,4-glucanase inhibitor protein-like protein from soybean lacking inhibitory activity against endo-β-glucanase.

机构信息

Graduate School of Nanobioscience, Yokohama City University, Japan.

出版信息

FEBS J. 2011 Jun;278(11):1944-54. doi: 10.1111/j.1742-4658.2011.08111.x. Epub 2011 Apr 28.

DOI:10.1111/j.1742-4658.2011.08111.x
PMID:21457461
Abstract

β-Linked glucans such as cellulose and xyloglucan are important components of the cell walls of most dicotyledonous plants. These β-linked glucans are constantly exposed to degradation by various endo-β-glucanases from pathogenic bacteria and fungi. To protect the cell wall from degradation by such enzymes, plants secrete proteinaceous endo-β-glucanases inhibitors, such as xyloglucan-specific endo-β-1,4-glucanase inhibitor protein (XEGIP) in tomato. XEGIPs typically inhibit xyloglucanase, a member of the glycoside hydrolase (GH)12 family. XEGIPs are also found in legumes, including soybean and lupin. To date, tomato XEGIP has been well studied, whereas XEGIPs from legumes are less well understood. Here, we determined the crystal structure of basic 7S globulin (Bg7S), a XEGIP from soybean, which represents the first three-dimensional structure of XEGIP. Bg7S formed a tetramer with pseudo-222 symmetry. Analytical centrifugation and size exclusion chromatography experiments revealed that the assembly of Bg7S in solution depended on pH. The structure of Bg7S was similar to that of a xylanase inhibitor protein from wheat (Tritinum aestivum xylanase inhibitor) that inhibits GH11 xylanase. Surprisingly, Bg7S lacked inhibitory activity against not only GH11 but also GH12 enzymes. In addition, we found that XEGIPs from azukibean, yardlongbean and mungbean also had no impact on the activity of either GH12 or GH11 enzymes, indicating that legume XEGIPs generally do not inhibit these enzymes. We reveal the structural basis of why legume XEGIPs lack this inhibitory activity. This study will provide significant clues for understanding the physiological role of Bg7S.

摘要

β-连接的葡聚糖,如纤维素和木葡聚糖,是大多数双子叶植物细胞壁的重要组成部分。这些β-连接的葡聚糖不断受到来自病原细菌和真菌的各种内-β-葡聚糖酶的降解。为了防止细胞壁被这些酶降解,植物分泌蛋白型内-β-葡聚糖酶抑制剂,如番茄中的木葡聚糖特异性内-β-1,4-葡聚糖酶抑制剂蛋白(XEGIP)。XEGIPs 通常抑制木葡聚糖酶,木葡聚糖酶是糖苷水解酶(GH)12 家族的一员。XEGIPs 也存在于豆科植物中,包括大豆和羽扇豆。迄今为止,番茄 XEGIP 已经得到了很好的研究,而豆类植物的 XEGIP 则了解较少。在这里,我们确定了大豆 XEGIP 碱性 7S 球蛋白(Bg7S)的晶体结构,它代表了第一个 XEGIP 的三维结构。Bg7S 形成具有拟 222 对称的四聚体。分析离心和大小排阻色谱实验表明,Bg7S 在溶液中的组装取决于 pH 值。Bg7S 的结构与来自小麦的木聚糖酶抑制剂蛋白(Tritinum aestivum xylanase inhibitor)的结构相似,该蛋白抑制 GH11 木聚糖酶。令人惊讶的是,Bg7S 不仅对 GH11 酶而且对 GH12 酶都没有抑制活性。此外,我们发现来自菜豆、豇豆和绿豆的 XEGIPs 也对 GH12 或 GH11 酶的活性没有影响,这表明豆科植物的 XEGIPs 通常不抑制这些酶。我们揭示了为什么豆科植物的 XEGIPs 缺乏这种抑制活性的结构基础。这项研究将为理解 Bg7S 的生理功能提供重要线索。

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