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首页> 外文期刊>BMC Plant Biology >Relationships between starch synthase I and branching enzyme isozymes determined using double mutant rice lines
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Relationships between starch synthase I and branching enzyme isozymes determined using double mutant rice lines

机译:利用双突变水稻系测定淀粉合酶I与分支酶同工酶的关系

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Background Starch is the most important carbohydrate in plant storage tissues. Multiple isozymes in at least four enzyme classes are involved in starch biosynthesis. Some of these isozymes are thought to interact and form complexes for efficient starch biosynthesis. Of these enzyme classes, starch synthases (SSs) and branching enzymes (BEs) play particularly central roles. Results We generated double mutant lines (ss1/be1 and ss1L/be2b) between SSI (the largest component of total soluble SS activity) and BEI or BEIIb (major BEs in developing rice endosperm) to explore the relationships among these isozymes. The seed weight of ss1/be1 was comparable to that of wild type, although most ss1/be2b seeds were sterile and no double recessive plants were obtained. The seed weight of the double recessive mutant line ss1L/be2b, derived from the leaky ss1 mutant (ss1L) and be2b, was higher than that of the single be2b mutant. Analyses of the chain-length distribution of amylopectin in ss1/be1 endosperm revealed additive effects of SSI and BEI on amylopectin structure. Chain-length analysis indicated that the BEIIb deficiency significantly reduced the ratio of short chains in amylopectin of ss1L/be2b. The amylose content of endosperm starch of ss1/be1 and ss1L/be2b was almost the same as that of wild type, whereas the endosperm starch of be2b contained more amylose than did that of wild type. SSI, BEI, and BEIIb deficiency also affected the extent of binding of other isozymes to starch granules. Conclusions Analysis of the chain-length distribution in amylopectin of the double mutant lines showed that SSI and BEI or BEIIb primarily function independently, and branching by BEIIb is followed by SSI chain elongation. The increased amylose content in be2b was because of reduced amylopectin biosynthesis; however, the lower SSI activity in this background may have enhanced amylopectin biosynthesis as a result of a correction of imbalance between the branching and elongation found in the single mutant. The fact that a deficiency of SSI, BEI, or BEIIb affected the affinity of other starch biosynthetic isozymes for the starch granule implies that there is a close interaction among SSI, BEI and BEIIb during amylopectin biosynthesis in rice endosperm.
机译:背景技术淀粉是植物储存组织中最重要的碳水化合物。淀粉生物合成涉及至少四种酶类别的多种同工酶。这些同工酶中的一些被认为可以相互作用并形成复合物,从而有效地进行淀粉生物合成。在这些酶类别中,淀粉合酶(SSs)和分支酶(BEs)发挥特别重要的作用。结果我们在SSI(总可溶性SS活性的最大成分)和BEI或BEIIb(发育中的水稻胚乳中的主要BE)之间产生了双突变株(ss1 / be1和ss1 L / be2b),以探索这些同工酶之间的关系。 ss1 / be1的种子重量与野生型相当,尽管大多数ss1 / be2b种子是不育的,没有获得双隐性植物。源自隐性ss1突变体(ss1 L )和be2b的双隐性突变株ss1 L / be2b的种子重均高于单个be2b突变体。对支链淀粉在ss1 / be1胚乳中的链长分布的分析揭示了SSI和BEI对支链淀粉结构的累加作用。链长分析表明,BEIIb缺乏明显降低了支链淀粉中ss1 L / be2b的短链比例。 ss1 / be1和ss1 L / be2b的胚乳淀粉的直链淀粉含量几乎与野生型相同,而be2b的胚乳淀粉的直链淀粉含量比野生型高。 SSI,BEI和BEIIb缺乏症也影响其他同工酶与淀粉颗粒结合的程度。结论对双突变株支链淀粉中链长分布的分析表明,SSI和BEI或BEIIb主要独立发挥作用,先由BEIIb分支,然后延伸SSI。 be2b中直链淀粉含量的增加是由于支链淀粉的生物合成减少所致。但是,由于纠正了单个突变体中分支和伸长之间的不平衡,在这种背景下较低的SSI活性可能增强了支链淀粉的生物合成。 SSI,BEI或BEIIb的缺乏会影响其他淀粉生物合成同工酶对淀粉颗粒的亲和力这一事实表明,在稻胚乳中支链淀粉生物合成过程中,SSI,BEI和BEIIb之间存在紧密的相互作用。

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