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Differential Proteolysis of Glycinin and β-Conglycinin Polypeptides during Soybean Germination and Seedling Growth

机译:大豆萌发和幼苗生长过程中大豆球蛋白和大豆球蛋白的差异蛋白水解

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摘要

The degradation of the major seed storage globulins of the soybean (Glycine max [L.] Merrill) was examined during the first 12 days of germination and seedling growth. The appearance of glycinin and β-conglycinin degradation products was detected by sodium dodecyl sulfate-polyacrylamide gel electrophoresis of cotyledon extracts followed by electroblotting to nitrocellulose and immunostaining using glycinin and β-conglycinin specific antibodies. The three subunits of β-conglycinin were preferentially metabolized. Of the three subunits of β-conglycinin, the larger α and α′ subunits are rapidly degraded, generating new β-conglycinin cross-reactive polypeptides of 51,200 molecular weight soon after imbibition of the seed. After 6 days of growth the β-subunit is also hydrolyzed. At least six polypeptides, ranging from 33,100 to 24,000 molecular weight, appear as apparent degradation products of β-conglycinin. The metabolism of the glycinin acidic chains begins early in growth. The glycinin acidic chains present at day 3 have already been altered from the native form in the ungerminated seed, as evidenced by their higher mobility in an alkaline-urea polyacrylamide gel electrophoresis system. However, no change in the molecular weight of these chains is detectable by sodium dodecyl sulfate-polyarylamide gel electrophoresis. Examination of the glycinin polypeptide amino-termini by dansylation suggests that this initial modification of the acidic chains involves limited proteolysis at the carboxyl-termini, deamidation, or both. After 3 days of growth the acidic chains are rapidly hydrolyzed to a smaller (21,900 molecular weight) form. The basic polypeptides of glycinin appear to be unaltered during the first 8 days of growth, but are rapidly degraded thereafter to unidentified products. All of the original glycinin basic chains have been destroyed by day 10 of growth.
机译:在发芽和幼苗生长的前12天中检查了大豆主要种子贮藏球蛋白(Glycine max [L.] Merrill)的降解。通过对子叶提取物的十二烷基硫酸钠-聚丙烯酰胺凝胶电泳,然后电印迹到硝酸纤维素并使用大豆球蛋白和β-大豆球蛋白特异性抗体进行免疫染色,来检测大豆球蛋白和β-大豆球蛋白降解产物的出现。 β-伴大豆球蛋白的三个亚基被优先代谢。 β-伴大豆球蛋白的三个亚基中,较大的α和α'亚基会迅速降解,在吸收种子后立即产生分子量为51,200的新的β-伴大豆球蛋白交叉反应多肽。生长6天后,β-亚基也被水解。至少六种分子量为33,100至24,000的多肽显示为β-伴大豆球蛋白的明显降解产物。甘氨酸酸性链的代谢在生长的早期开始。第3天存在的甘氨酸酸性链已经从未发芽种子中的天然形式发生了改变,这通过它们在碱性尿素聚丙烯酰胺凝胶电泳系统中的较高迁移率来证明。但是,十二烷基硫酸钠-聚芳基酰胺凝胶电泳无法检测到这些链的分子量变化。通过丹磺酰化对大豆球蛋白多肽氨基末端的检查表明,酸性链的这种初始修饰涉及在羧基末端的有限的蛋白水解,脱酰胺或两者。生长3天后,酸性链迅速水解成较小的(分子量为21,900)形式。大豆球蛋白的基本多肽在生长的前8天似乎没有改变,但此后迅速降解为未鉴定的产物。在生长的第10天时,所有原始的大豆球蛋白基本链都已被破坏。

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