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The Rice Endosperm ADP-Glucose Pyrophosphorylase Large Subunit is Essential for Optimal Catalysis and Allosteric Regulation of the Heterotetrameric Enzyme

机译:水稻胚乳ADP-葡萄糖焦磷酸化酶大亚基对于异四聚酶的最佳催化和变构调节是必不可少的。

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摘要

Although an alternative pathway has been suggested, the prevailing view is that starch synthesis in cereal endosperm is controlled by the activity of the cytosolic isoform of ADPglucose pyrophosphorylase (AGPase). In rice, the cytosolic AGPase isoform is encoded by the OsAGPS2b and OsAGPL2 genes, which code for the small (S2b) and large (L2) subunits of the heterotetrameric enzyme, respectively. In this study, we isolated several allelic missense and nonsense OsAGPL2 mutants by N-methyl-N-nitrosourea (MNU) treatment of fertilized egg cells and by TILLING (Targeting Induced Local Lesions in Genomes). Interestingly, seeds from three of the missense mutants (two containing T139I and A171V) were severely shriveled and had seed weight and starch content comparable with the shriveled seeds from OsAGPL2 null mutants. Results from kinetic analysis of the purified recombinant enzymes revealed that the catalytic and allosteric regulatory properties of these mutant enzymes were significantly impaired. The missense heterotetramer enzymes and the S2b homotetramer had lower specific (catalytic) activities and affinities for the activator 3-phosphoglycerate (3-PGA). The missense heterotetramer enzymes showed more sensitivity to inhibition by the inhibitor inorganic phosphate (P-i) than the wild-type AGPase, while the S2b homotetramer was profoundly tolerant to P-i inhibition. Thus, our results provide definitive evidence that starch biosynthesis during rice endosperm development is controlled predominantly by the catalytic activity of the cytoplasmic AGPase and its allosteric regulation by the effectors. Moreover, our results show that the L2 subunit is essential for both catalysis and allosteric regulatory properties of the heterotetramer enzyme.
机译:尽管已经提出了另一种途径,但普遍的看法是谷物胚乳中的淀粉合成受ADP葡萄糖焦磷酸化酶(AGPase)胞质同工型的活性控制。在水稻中,胞质AGPase亚型由OsAGPS2b和OsAGPL2基因编码,分别编码异四聚酶的小(S2b)和大(L2)亚基。在这项研究中,我们通过N-甲基-N-亚硝基脲(MNU)处理受精卵细胞和通过TILLING(靶向基因组中的诱导局部病变)分离了多个等位基因错义和无意义的OsAGPL2突变体。有趣的是,来自三个错义突变体(两个包含T139I和A171V)的种子被严重切丝,其种子重量和淀粉含量与OsAGPL2 null突变子切丝的种子相当。对纯化的重组酶进行动力学分析的结果表明,这些突变酶的催化和变构调节特性被大大削弱。错义异四聚体酶和S2b同四聚体对活化剂3-磷酸甘油酸酯(3-PGA)的特异性(催化)活性和亲和力较低。与野生型AGPase相比,错义异四聚体酶对抑制剂无机磷酸盐(P-i)的抑制作用表现出更高的敏感性,而S2b同四聚体对P-1抑制的耐受性强。因此,我们的结果提供了明确的证据,表明水稻胚乳发育过程中淀粉的生物合成主要受细胞质AGPase的催化活性及其效应物的变构调节的控制。此外,我们的结果表明,L2亚基对于异四聚酶的催化和变构调节特性都是必不可少的。

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