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Structural Ordering of Disordered Ligand-Binding Loops of Biotin Protein Ligase into Active Conformations as a Consequence of Dehydration

机译:生物素蛋白连接酶的无序配体结合环的结构排序成活性构象脱水的结果

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摘要

Mycobacterium tuberculosis (Mtb), a dreaded pathogen, has a unique cell envelope composed of high fatty acid content that plays a crucial role in its pathogenesis. Acetyl Coenzyme A Carboxylase (ACC), an important enzyme that catalyzes the first reaction of fatty acid biosynthesis, is biotinylated by biotin acetyl-CoA carboxylase ligase (BirA). The ligand-binding loops in all known apo BirAs to date are disordered and attain an ordered structure only after undergoing a conformational change upon ligand-binding. Here, we report that dehydration of Mtb-BirA crystals traps both the apo and active conformations in its asymmetric unit, and for the first time provides structural evidence of such transformation. Recombinant Mtb-BirA was crystallized at room temperature, and diffraction data was collected at 295 K as well as at 120 K. Transfer of crystals to paraffin and paratone-N oil (cryoprotectants) prior to flash-freezing induced lattice shrinkage and enhancement in the resolution of the X-ray diffraction data. Intriguingly, the crystal lattice rearrangement due to shrinkage in the dehydrated Mtb-BirA crystals ensued structural order of otherwise flexible ligand-binding loops L4 and L8 in apo BirA. In addition, crystal dehydration resulted in a shift of ∼3.5 Å in the flexible loop L6, a proline-rich loop unique to Mtb complex as well as around the L11 region. The shift in loop L11 in the C-terminal domain on dehydration emulates the action responsible for the complex formation with its protein ligand biotin carboxyl carrier protein (BCCP) domain of ACCA3. This is contrary to the involvement of loop L14 observed in Pyrococcus horikoshii BirA-BCCP complex. Another interesting feature that emerges from this dehydrated structure is that the two subunits A and B, though related by a noncrystallographic twofold symmetry, assemble into an asymmetric dimer representing the ligand-bound and ligand-free states of the protein, respectively. In-depth analyses of the sequence and the structure also provide answers to the reported lower affinities of Mtb-BirA toward ATP and biotin substrates. This dehydrated crystal structure not only provides key leads to the understanding of the structure/function relationships in the protein in the absence of any ligand-bound structure, but also demonstrates the merit of dehydration of crystals as an inimitable technique to have a glance at proteins in action.
机译:结核分枝杆菌(Mtb)是一种可怕的病原体,具有由高脂肪酸组成的独特细胞膜,在其发病机理中起着至关重要的作用。乙酰辅酶羧化酶(ACC)是一种催化脂肪酸生物合成的第一反应的重要酶,被生物素乙酰辅酶A羧化酶连接酶(BirA)生物素化。迄今为止,所有已知载脂蛋白BirA中的配体结合环都是无序的,并且仅在配体结合后发生构象变化后才获得有序结构。在这里,我们报告说,Mtb-BirA晶体的脱水会在其不对称单元中捕获apo和活性构象,并且首次为这种转化提供了结构性证据。重组Mtb-BirA在室温下结晶,并在295 K和120 K下收集衍射数据。在快速冷冻之前,晶体转移到石蜡和对苯二酚N油(低温保护剂)中会引起晶格收缩和增强。 X射线衍射数据的分辨率。有趣的是,由于脱水的Mtb-BirA晶体的收缩而导致的晶格重排,导致了载脂蛋白BirA中原本灵活的配体结合环L4和L8的结构顺序。此外,晶体脱水导致柔性环L6(Mtb复合体特有的富含脯氨酸的环)以及L11区域位移约3.5Å。脱水时,C末端结构域中环L11的移位模拟了与其ACCA3的蛋白质配体生物素羧基载体蛋白(BCCP)结构域形成复合物的作用。这与在火球菌BirA-BCCP复合物中观察到的环L14的参与相反。从该脱水结构中出现的另一个有趣的特征是,尽管两个亚基A和B通过非晶体双重对称性相互关联,但它们组装成一个不对称的二聚体,分别代表蛋白质的配体结合状态和无配体状态。对序列和结构的深入分析也为报道的Mtb-BirA对ATP和生物素底物的较低亲和力提供了答案。这种脱水的晶体结构不仅提供了在不存在任何配体结合结构的情况下理解蛋白质中结构/功能关系的关键线索,而且还证明了晶体脱水的优点是一种一览无余的蛋白质技术在行动。

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