Structural and functional analysis of a truncated form of Saccharomyces cerevisiae ATP sulfurylase: C-terminal domain essential for oligomer formation but not for activity.

D J Lalor, T Schnyder, V Saridakis, D E Pilloff, A Dong, H Tang, T S Leyh, E F Pai
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引用次数: 18

Abstract

ATP sulfurylase catalyzes the first step in the activation of sulfate by transferring the adenylyl-moiety (AMP approximately ) of ATP to sulfate to form adenosine 5'-phosphosulfate (APS) and pyrophosphate (PP(i)). Subsequently, APS kinase mediates transfer of the gamma-phosphoryl group of ATP to APS to form 3'-phosphoadenosine 5'-phosphosulfate (PAPS) and ADP. The recently determined crystal structure of yeast ATP sulfurylase suggests that its C-terminal domain is structurally quite independent from the other domains, and not essential for catalytic activity. It seems, however, to dictate the oligomerization state of the protein. Here we show that truncation of this domain results in a monomeric enzyme with slightly enhanced catalytic efficiency. Structural alignment of the C-terminal domain indicated that it is extremely similar in its fold to APS kinase although not catalytically competent. While carrying out these structural and functional studies a surface groove was noted. Careful inspection and modeling revealed that the groove is sufficiently deep and wide, as well as properly positioned, to act as a substrate channel between the ATP sulfurylase and APS kinase-like domains of the enzyme.
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截断型酿酒酵母ATP硫化酶的结构和功能分析:c端结构域对低聚物的形成至关重要,但对活性无关。
ATP硫酰化酶催化硫酸盐活化的第一步,将ATP的腺苷基部分(AMP)转移到硫酸盐上,形成5'-磷酸硫酸腺苷(APS)和焦磷酸(PP(i))。随后,APS激酶介导ATP的γ -磷酸基向APS转移,形成3'-磷酸腺苷5'-磷酸硫酸酯(PAPS)和ADP。最近测定的酵母ATP硫酰化酶的晶体结构表明,其c端结构域在结构上完全独立于其他结构域,对催化活性不是必需的。然而,它似乎决定了蛋白质的寡聚化状态。在这里,我们表明截断该结构域导致单体酶的催化效率略有提高。c端结构域的结构比对表明,它的折叠与APS激酶非常相似,尽管没有催化能力。在进行这些结构和功能研究时,注意到一个表面凹槽。仔细的检查和建模显示,沟槽足够深和宽,并且位置合适,可以作为ATP硫酰化酶和APS激酶样结构域之间的底物通道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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