Katsube T, Kurisaka N, Ogawa M, Maruyama N, Ohtsuka R, Utsumi S, Takaiwa F
Research Institute for Food Science, Kyoto University, Uji, Kyoto 611-0011, Japan (T.K., N.M., S.U.).
Plant Physiol. 1999 Aug;120(4):1063-74. doi: 10.1104/pp.120.4.1063.
Saline-soluble glycinins and insoluble glutelins are the major storage proteins in soybean (Glycine max) and rice (Oryza sativa), respectively. In spite of their differences in solubility properties, both proteins are members of the 11S globulin gene family based on their similarities in primary sequences and processing of the coded protein. Wild-type and methionine-modified glycinin coding sequences were expressed in transgenic rice plants under the control of the rice glutelin GluB-1 promoter. Glycinins were specifically synthesized in the endosperm tissue and co-localized with glutelins in type II protein bodies. They assembled into 7S and 11S species, similar to what was observed in developing soybean seeds. This pattern was quite different from that displayed by the rice glutelins in untransformed plants, in which processed subunits sedimenting at 2S were apparent. In glycinin-expressing transgenic plants, however, glutelins were observed sedimenting at 7S and 11S with lesser amounts in the 2S region. A portion of the glycinins was also found associated in the insoluble glutelin fraction. Renaturation experiments suggested that the hybrid glycinin-glutelin oligomers were formed through specific interactions. Overall, these results indicate that despite significant differences in the assembly of soybean glycinin and rice glutelin, both proteins can assemble with each other to form soluble hexameric oligomers or insoluble aggregates.
盐溶性大豆球蛋白和不溶性谷蛋白分别是大豆(Glycine max)和水稻(Oryza sativa)中的主要贮藏蛋白。尽管它们在溶解性上存在差异,但基于其一级序列和编码蛋白加工过程的相似性,这两种蛋白都是11S球蛋白基因家族的成员。野生型和甲硫氨酸修饰的大豆球蛋白编码序列在水稻谷蛋白GluB-1启动子的控制下在转基因水稻植株中表达。大豆球蛋白在胚乳组织中特异性合成,并与谷蛋白共定位在II型蛋白体中。它们组装成7S和11S种类,类似于在发育中的大豆种子中观察到的情况。这种模式与未转化植株中水稻谷蛋白所显示的模式有很大不同,在未转化植株中,2S沉降的加工亚基很明显。然而,在表达大豆球蛋白的转基因植株中,观察到谷蛋白在7S和11S沉降,2S区域的量较少。还发现一部分大豆球蛋白与不溶性谷蛋白部分相关。复性实验表明,杂合大豆球蛋白-谷蛋白寡聚体是通过特异性相互作用形成的。总体而言,这些结果表明,尽管大豆球蛋白和水稻谷蛋白的组装存在显著差异,但这两种蛋白都可以相互组装形成可溶性六聚体寡聚体或不溶性聚集体。