首页> 外文期刊>Journal of Biomolecular NMR >Dynamics of stromelysin/inhibitor interactions studied by 15N NMR relaxation measurements: comparison of ligand binding to the S1-S3 and S'1-S'3 subsites.
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Dynamics of stromelysin/inhibitor interactions studied by 15N NMR relaxation measurements: comparison of ligand binding to the S1-S3 and S'1-S'3 subsites.

机译:由15N NMR弛豫测量研究的基层素/抑制剂相互作用的动态:配体与S1-S3和S'1-S'3子胞胎结合的比较。

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This report describes the backbone amide dynamics of the uniformly 15N labeled catalytic domain of human stromelysin complexed to PNU-99533, a hydroxamate-containing ligand that binds to the S'1-S'3 region (right side) of the stromelysin active site, and to PNU-107859 and PNU-142372, both thiadiazole-containing ligands that bind to the S1-S3 region (left side) of the stromelysin active site. 15N R1, R2 and NOE NMR relaxation measurements were recorded and analyzed for each complex. Different dynamic behaviors were observed for stromelysin complexed to the two classes of ligands, indicating that it may be possible to use protein dynamics to distinguish between different binding orientations. In the absence of bound ligand at the S1-S3 subsites, the S1-S3 residues were found to be relatively rigid. In contrast, the S'1-S'3 subsites were found to be flexible in the absence of interactions with ligand. The relative rigidness of the S1-S3 subsites may be responsible for MMP binding specificity by discriminating between ligands of different shapes. By contrast, the inherent flexibility of the S'1-S'3 subsites allows structural rearrangement to accommodate a broad range of incoming substrates or inhibitors. Similarities and differences in dynamics observed for each complex provide insights into the interactions responsible for protein-ligand recognition. The relevance of protein dynamics to structure-based drug design is discussed.
机译:本报告描述了将掺杂15N标记的催化结构域的骨干酰胺动力学络合到PNU-99533,含含异羟胺的配体的含羟胺的配体,其结合了链条活性位点的S'1-S'3区(右侧),并向PNU-107859和PNU-142372,含噻二唑的配体,其结合了基团活性位点的S1-S3区(左侧)。记录和分析每个复合物的15N R1,R2和NOE NMR弛豫测量。观察到对两类配体复合的基质铃肠不同的动态行为,表明可以使用蛋白质动力学来区分不同的结合取向。在S1-S3子层的没有结合配体的情况下,发现S1-S3残基是相对刚性的。相比之下,发现S'1-S'3子位在没有与配体的相互作用的情况下是灵活的。通过区分不同形状的配体,S1-S3子岩的相对刚性可以负责MMP结合特异性。相比之下,S'1-S'3子岩的固有灵活性允许结构重排,以适应各种进入的基材或抑制剂。每个复合物观察到的动态的相似性和差异提供了对蛋白质配体识别的相互作用的见解。讨论了蛋白质动力学与基于结构的药物设计的相关性。

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