Slow dynamics orchestrate communication between binding sites in the condensation domain of a non-ribosomal peptide synthetase.

IF 4.5 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Megha N Karanth, Debajyoti De, John Kirkpatrick, Mark Jeeves, Teresa Carlomagno
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引用次数: 0

Abstract

Non-ribosomal peptide synthetases (NRPSs) are complex molecular machineries that synthesize non-proteinaceous peptides in microorganisms. These peptides (NRPs) usually present a wide range of biological activities and are highly regarded as potential anti-cancer and anti-infective agents. Because of their chemical complexity, derivatives of NRPs with tailored pharmacological properties are difficult to synthesize chemically, which has triggered efforts to understand the functional mechanisms of NRPS systems and develop protein engineering strategies aimed at enabling enzymatic synthesis of non-natural NRPs. A fundamental reaction step of NRPS systems is the formation of peptide bonds between amino-acid-like building blocks. This reaction is catalysed by so-called condensation domains. The structures of several condensation domains and their complexes have been solved by crystallography and electron microscopy, but these structures have failed to provide the key to the design of artificial condensation domains. Here, we use NMR spectroscopy to reveal a complex network of dynamics in the condensation domain of the NRPS responsible for the synthesis of Tomaymycin and reveal how these motions mediate communication between the two substrate binding sites, providing a means to synchronize interactions for efficient catalysis. Our results underline the impact of dynamics, next to structure, on the function of enzymatic units and reinforce the need to consider conformational flexibility in the design of proteins with altered functions.

慢动力学协调非核糖体肽合成酶缩合域结合位点之间的通信。
非核糖体肽合成酶(NRPSs)是微生物合成非蛋白肽的复杂分子机制。这些肽通常具有广泛的生物活性,被认为是潜在的抗癌和抗感染药物。由于其化学复杂性,具有定制药理特性的NRPs衍生物难以化学合成,这促使人们努力了解NRPs系统的功能机制,并开发旨在实现酶合成非天然NRPs的蛋白质工程策略。NRPS系统的一个基本反应步骤是在氨基酸类构建块之间形成肽键。这个反应是由所谓的缩合域催化的。通过晶体学和电子显微镜研究了几种缩合域及其配合物的结构,但这些结构未能为人工缩合域的设计提供关键。在这里,我们使用核磁共振波谱揭示了在负责合成托马霉素的NRPS的缩合域中一个复杂的动力学网络,并揭示了这些运动如何介导两个底物结合位点之间的通信,为有效催化提供了一种同步相互作用的方法。我们的研究结果强调了动力学的影响,其次是结构,对酶单位的功能,并加强了在设计功能改变的蛋白质时考虑构象灵活性的需要。
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来源期刊
Journal of Molecular Biology
Journal of Molecular Biology 生物-生化与分子生物学
CiteScore
11.30
自引率
1.80%
发文量
412
审稿时长
28 days
期刊介绍: Journal of Molecular Biology (JMB) provides high quality, comprehensive and broad coverage in all areas of molecular biology. The journal publishes original scientific research papers that provide mechanistic and functional insights and report a significant advance to the field. The journal encourages the submission of multidisciplinary studies that use complementary experimental and computational approaches to address challenging biological questions. Research areas include but are not limited to: Biomolecular interactions, signaling networks, systems biology; Cell cycle, cell growth, cell differentiation; Cell death, autophagy; Cell signaling and regulation; Chemical biology; Computational biology, in combination with experimental studies; DNA replication, repair, and recombination; Development, regenerative biology, mechanistic and functional studies of stem cells; Epigenetics, chromatin structure and function; Gene expression; Membrane processes, cell surface proteins and cell-cell interactions; Methodological advances, both experimental and theoretical, including databases; Microbiology, virology, and interactions with the host or environment; Microbiota mechanistic and functional studies; Nuclear organization; Post-translational modifications, proteomics; Processing and function of biologically important macromolecules and complexes; Molecular basis of disease; RNA processing, structure and functions of non-coding RNAs, transcription; Sorting, spatiotemporal organization, trafficking; Structural biology; Synthetic biology; Translation, protein folding, chaperones, protein degradation and quality control.
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