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Crystal Structures of Human Muscle Fructose-16-Bisphosphatase: Novel Quaternary States Enhanced AMP Affinity and Allosteric Signal Transmission Pathway

机译:人肌肉果糖-16-Bisphosphatase的晶体结构:新颖的第四态增强的AMP亲和力和变构信号传递途径。

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摘要

Fructose-1,6-bisphosphatase, a key enzyme in gluconeogenesis, is subject to metabolic regulation. The human muscle isozyme is significantly more sensitive towards the allosteric inhibitor, AMP, than the liver isoform. Here we report crystal structures and kinetic studies for wild-type human muscle Fru-1,6-Pase, the AMP-bound (1.6 Å), and product-bound complexes of the Q32R mutant, which was firstly introduced by an error in the cloning. Our high-resolution structure reveals for the first time that the higher sensitivity of the muscle isozyme towards AMP originates from an additional water-mediated, H-bonded network established between AMP and the binding pocket. Also present in our structures are a metaphosphate molecule, alternate conformations of Glu97 coordinating Mg2+, and possible metal migration during catalysis. Although the individual subunit is similar to previously reported Fru-1,6-Pase structures, the tetrameric assembly of all these structures deviates from the canonical R- or T-states, representing novel tetrameric assemblies. Intriguingly, the concentration of AMP required for 50% inhibition of the Q32R mutant is increased 19-fold, and the cooperativity of both AMP and Mg2+ is abolished or decreased. These structures demonstrate the Q32R mutation affects the conformations of both N-terminal residues and the dynamic loop 52–72. Also importantly, structural comparison indicates that this mutation in helix α2 is detrimental to the R-to-T conversion as evidenced by the absence of quaternary structural changes upon AMP binding, providing direct evidence for the critical role of helix α2 in the allosteric signal transduction.
机译:1,6-双磷酸果糖是糖异生的关键酶,需要进行代谢调节。与肌肉同工型相比,人类肌肉同工酶对变构抑制剂AMP的敏感性明显更高。在这里,我们报告了Q32R突变体的野生型人类肌肉Fru-1,6-Pase,AMP结合(1.6Å)和产物结合复合物的晶体结构和动力学研究。克隆。我们的高分辨率结构首次揭示了肌肉同工酶对AMP的更高敏感性源自于在AMP与结合口袋之间建立的另一种水介导的H键网络。在我们的结构中还存在一个偏磷酸盐分子,与Mg 2 + 配位的Glu97的替代构象以及催化过程中可能的金属迁移。尽管单个亚基类似于先前报道的Fru-1,6-Pase结构,但所有这些结构的四聚体组装均偏离了典型的R-或T-态,代表了新颖的四聚体组装体。有趣的是,抑制Q32R突变体50%所需的AMP浓度增加了19倍,并且AMP和Mg 2 + 的协同作用均被取消或降低。这些结构证明Q32R突变影响N末端残基和动态环52-72的构象。同样重要的是,结构比较表明螺旋α2的这种突变对R到T的转化是有害的,如AMP结合后不存在四级结构变化所证明的那样,这为螺旋α2在变构信号转导中的关键作用提供了直接证据。 。

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