Goodrich Andrew C, Meyers David J, Frueh Dominique P
From the Department of Biophysics and Biophysical Chemistry and.
the Department of Pharmacology and Molecular Sciences Synthetic Core Facility, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205.
J Biol Chem. 2017 Jun 16;292(24):10002-10013. doi: 10.1074/jbc.M116.766220. Epub 2017 Apr 28.
Nonribosomal peptide synthesis involves the interplay between covalent protein modifications, conformational fluctuations, catalysis, and transient protein-protein interactions. Delineating the mechanisms involved in orchestrating these various processes will deepen our understanding of domain-domain communication in nonribosomal peptide synthetases (NRPSs) and lay the groundwork for the rational reengineering of NRPSs by swapping domains handling different substrates to generate novel natural products. Although many structural and biochemical studies of NRPSs exist, few studies have focused on the energetics and dynamics governing the interactions in these systems. Here, we present detailed binding studies of an adenylation domain and its partner carrier protein in apo-, holo-, and substrate-loaded forms. Results from fluorescence anisotropy, isothermal titration calorimetry, and NMR titrations indicated that covalent modifications to a carrier protein modulate domain communication, suggesting that chemical modifications to carrier proteins during NRPS synthesis may impart directionality to sequential NRPS domain interactions. Comparison of the structure and dynamics of an apo-aryl carrier protein with those of its modified forms revealed structural fluctuations induced by post-translational modifications and mediated by modulations of protein dynamics. The results provide a comprehensive molecular description of a carrier protein throughout its life cycle and demonstrate how a network of dynamic residues can propagate the molecular impact of chemical modifications throughout a protein and influence its affinity toward partner domains.
非核糖体肽合成涉及共价蛋白质修饰、构象波动、催化作用以及瞬时蛋白质-蛋白质相互作用之间的相互作用。阐明协调这些不同过程所涉及的机制,将加深我们对非核糖体肽合成酶(NRPSs)中结构域-结构域通讯的理解,并为通过交换处理不同底物的结构域来合理改造NRPSs以产生新型天然产物奠定基础。尽管存在许多关于NRPSs的结构和生化研究,但很少有研究关注这些系统中相互作用的能量学和动力学。在这里,我们展示了对腺苷化结构域及其伴侣载体蛋白在无辅基、全酶和底物负载形式下的详细结合研究。荧光各向异性、等温滴定量热法和核磁共振滴定的结果表明,对载体蛋白的共价修饰调节了结构域通讯,这表明在NRPS合成过程中对载体蛋白的化学修饰可能为NRPS结构域的顺序相互作用赋予方向性。将无辅基芳基载体蛋白与其修饰形式的结构和动力学进行比较,揭示了由翻译后修饰诱导并由蛋白质动力学调节介导的结构波动。这些结果提供了载体蛋白整个生命周期的全面分子描述,并展示了动态残基网络如何在整个蛋白质中传播化学修饰的分子影响,并影响其对伴侣结构域的亲和力。