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首页> 外文期刊>Journal of Molecular Biology >Motif III in superfamily 2 'helicases' helps convert the binding energy of ATP into a high-affinity RNA binding site in the yeast DEAD-box protein Ded1.
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Motif III in superfamily 2 'helicases' helps convert the binding energy of ATP into a high-affinity RNA binding site in the yeast DEAD-box protein Ded1.

机译:超家族2“螺旋酶”中的基序III帮助将ATP的结合能转化为酵母DEAD-box蛋白Ded1中的高亲和力RNA结合位点。

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摘要

Motif III in the putative helicases of superfamily 2 is highly conserved in both its sequence and its structural context. It typically consists of the sequence alcohol-alanine-alcohol (S/T-A-S/T). Historically, it was thought to link ATPase activity with a "helicase" strand displacement activity that disrupts RNA or DNA duplexes. DEAD-box proteins constitute the largest family of superfamily 2; they are RNA-dependent ATPases and ATP-dependent RNA binding proteins that, in some cases, are able to disrupt short RNA duplexes. We made mutations of motif III (S-A-T) in the yeast DEAD-box protein Ded1 and analyzed in vivo phenotypes and in vitro properties. Moreover, we made a tertiary model of Ded1 based on the solved structure of Vasa. We used Ded1 because it has relatively high ATPase and RNA binding activities; it is able to displace moderately stable duplexes at a large excess of substrate. We find that the alanine and the threonine in the second and third positions of motif III are more important than the serine, but that mutations of all three residues have strong phenotypes. We purified the wild-type and various mutants expressed in Escherichia coli. We found that motif III mutations affect the RNA-dependent hydrolysis of ATP (k(cat)), but not the affinity for ATP (K(m)). Moreover, mutations alter and reduce the affinity for single-stranded RNA and subsequently reduce the ability to disrupt duplexes. We obtained intragenic suppressors of the S-A-C mutant that compensate for the mutation by enhancing the affinity for ATP and RNA. We conclude that motif III and the binding energy of gamma-PO(4) of ATP are used to coordinate motifs I, II, and VI and the two RecA-like domains to create a high-affinity single-stranded RNA binding site. It also may help activate the beta,gamma-phosphoanhydride bond of ATP.
机译:超家族2推定的解旋酶中的基序III在其序列和结构背景上都是高度保守的。它通常由序列酒精-丙氨酸-酒精(S / T-A-S / T)组成。从历史上看,人们认为将ATPase活性与破坏RNA或DNA双链体的“解旋酶”链置换活性联系起来。 DEAD-box蛋白构成了超家族2的最大家族。它们是RNA依赖的ATPase和ATP依赖的RNA结合蛋白,在某些情况下,它们能够破坏短的RNA双链体。我们在酵母DEAD-box蛋白Ded1中进行了基序III(S-A-T)的突变,并分析了体内表型和体外特性。此外,我们基于Vasa的解析结构构造了Ded1的三级模型。我们使用Ded1是因为它具有较高的ATPase和RNA结合活性。它能够在大量过量的底物上取代中等稳定的双链体。我们发现在基序III的第二和第三位置的丙氨酸和苏氨酸比丝氨酸更重要,但是所有三个残基的突变都有很强的表型。我们纯化了在大肠杆菌中表达的野生型和各种突变体。我们发现,基序III突变影响ATP(k(cat))的RNA依赖性水解,但不影响ATP(K(m))的亲和力。而且,突变改变并降低了对单链RNA的亲和力,并随后降低了破坏双链体的能力。我们获得了S-A-C突变体的基因内抑制子,可通过增强对ATP和RNA的亲和力来补偿突变。我们得出的结论是,基序III和ATP的gamma-PO(4)的结合能用于协调基序I,II和VI和两个RecA样结构域,以创建高亲和力的单链RNA结合位点。它还可能有助于激活ATP的β,γ-磷酸酐键。

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