首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The Apo-structure of the Low Molecular Weight Protein-tyrosine Phosphatase A (MptpA) from Mycobacterium tuberculosis Allows for Better Target-specific Drug Development
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The Apo-structure of the Low Molecular Weight Protein-tyrosine Phosphatase A (MptpA) from Mycobacterium tuberculosis Allows for Better Target-specific Drug Development

机译:结核分枝杆菌的低分子量蛋白酪氨酸磷酸酶A(MptpA)的Apo结构允许更好的目标特异性药物开发。

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摘要

Protein-tyrosine phosphatases (PTPs) and protein-tyrosine kinases co-regulate cellular processes. In pathogenic bacteria, they are frequently exploited to act as key virulence factors for human diseases. Mycobacterium tuberculosis, the causative organism of tuberculosis, secretes a low molecular weight PTP (LMW-PTP), MptpA, which is required for its survival upon infection of host macrophages. Although there is otherwise no sequence similarity of LMW-PTPs to other classes of PTPs, the phosphate binding loop (P-loop) CX5R and the loop containing a critical aspartic acid residue (D-loop), required for the catalytic activity, are well conserved. In most high molecular weight PTPs, ligand binding to the P-loop triggers a large conformational reorientation of the D-loop, in which it moves ∼10 Å, from an “open” to a “closed” conformation. Until now, there have been no ligand-free structures of LMW-PTPs described, and hence the dynamics of the D-loop have remained largely unknown for these PTPs. Here, we present a high resolution solution NMR structure of the free form of the MptpA LMW-PTP. In the absence of ligand and phosphate ions, the D-loop adopts an open conformation. Furthermore, we characterized the binding site of phosphate, a competitive inhibitor of LMW-PTPs, on MptpA and elucidated the involvement of both the P- and D-loop in phosphate binding. Notably, in LMW-PTPs, the phosphorylation status of two well conserved tyrosine residues, typically located in the D-loop, regulates the enzyme activity. PtkA, the kinase complementary to MptpA, phosphorylates these two tyrosine residues in MptpA. We characterized the MptpA-PtkA interaction by NMR spectroscopy to show that both the P- and D-loop form part of the binding interface.
机译:蛋白酪氨酸磷酸酶(PTP)和蛋白酪氨酸激酶共同调节细胞过程。在致病细菌中,它们经常被用作人类疾病的关键毒力因子。结核分枝杆菌是结核的病原体,它分泌一种低分子量PTP(LMW-PTP)MptpA,它是感染宿主巨噬细胞后生存所必需的。尽管LMW-PTP与其他类型的PTP没有序列相似性,但是磷酸结合环(P-环)CX5R和催化活性所需的含有关键天冬氨酸残基的环(D-环)很好保守的。在大多数高分子量PTP中,配体与P环的结合会触发D环的大构象重新定向,在这种构象中,它会从“开放”构象变为“封闭”构象约10Å。迄今为止,还没有描述的LMW-PTP的无配体结构,因此,对于这些PTP来说,D环的动力学仍是未知之数。在这里,我们提出了MptpA LMW-PTP游离形式的高分辨率溶液NMR结构。在没有配体和磷酸根离子的情况下,D环采用开放构象。此外,我们表征了LMW-PTP的竞争性抑制剂磷酸盐在MptpA上的结合位点,并阐明了P环和D环在磷酸盐结合中的参与。值得注意的是,在LMW-PTP中,通常位于D环中的两个保守性很强的酪氨酸残基的磷酸化状态调节了酶的活性。与MptpA互补的激酶PtkA使MptpA中的这两个酪氨酸残基磷酸化。我们通过NMR光谱表征了MptpA-PtkA相互作用,以显示P环和D环均形成结合界面的一部分。

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