Department of Botany, University of Guelph, N1G 2W1, Guelph, Ont., Canada.
Planta. 1986 Apr;167(4):504-10. doi: 10.1007/BF00391226.
As germination of axes of Pisum sativum L. seeds progressed, profound quantitative and qualitative changes occurred in the patterns of protein synthesis. This was shown by fluorography of gels following two-dimensional polyacrylamide gel electrophoresis separation of [(35)S]methioninelabelled proteins. The effects of desiccation during germination on these in-vivo protein-synthesis patterns were followed. Desiccation differentially affected the synthesis of proteins. Usually, however, upon rehydration following desiccation the types of proteins being synthesized were recognizable as those synthesized earlier during imbibition of control, once-imbibed axes: seeds imbibed for 8 h, and then dried, did not recommence synthesis of proteins typical of 8-h-imbibed control seeds, but rather of 4-h-imbibed control seeds. Seeds imbibed for 12 h, and then dried and rehydrated, synthesized proteins typical of 4-h-and 8-h-control seeds. Thus drying of germinating pea axes caused the proteinsynthesizing mechanism to revert to producing proteins typical of earlier stages of imbibition. Drying during germination never caused the seed to revert to the metabolic status of the initial mature dry state, however.
随着豌豆种子轴的发芽,蛋白质合成的模式发生了深刻的数量和质量变化。这是通过二维聚丙烯酰胺凝胶电泳分离 [(35)S]蛋氨酸标记蛋白质后,对凝胶进行荧光成像显示的。还跟踪了发芽过程中干燥对这些体内蛋白质合成模式的影响。干燥对蛋白质的合成有不同的影响。然而,通常在干燥后再水合时,合成的蛋白质类型可以识别为在对照种子吸胀过程中更早合成的蛋白质:吸胀 8 小时的种子,然后干燥,不再重新开始合成典型的 8 小时吸胀对照种子的蛋白质,而是开始合成典型的 4 小时吸胀对照种子的蛋白质。吸胀 12 小时的种子,然后干燥再水合,合成的蛋白质是典型的 4 小时和 8 小时对照种子的蛋白质。因此,萌发豌豆轴的干燥导致蛋白质合成机制恢复产生早期吸胀阶段的典型蛋白质。然而,在发芽过程中的干燥从未导致种子恢复到初始成熟干燥状态的代谢状态。