Ye Zhixia, Williams Gavin J
Department of Chemistry, North Carolina State University , Raleigh, North Carolina 27695, United States.
Biochemistry. 2014 Dec 9;53(48):7494-502. doi: 10.1021/bi500936u. Epub 2014 Nov 26.
Probing and interrogating protein interactions that involve acyl carrier proteins (ACP's) in fatty acid synthases and polyketide synthases are critical to understanding the molecular basis for the programmed assembly of complex natural products. Here, we have used unnatural amino acid mutagenesis to site specifically install photo-cross-linking functionality into acyl carrier proteins from diverse systems and the ketosynthase FabF from the Escherichia coli type II fatty acid synthase. Subsequently, a photo-cross-linking assay was employed to systematically probe the ability of FabF to interact with a broad panel of ACP's, illustrating the expected orthogonality of ACP:FabF interactions and the role of charged residues in helix II of the ACP. In addition, FabF residues involved in the binding interaction with the cognate carrier protein were identified via surface scanning mutagenesis and photo-cross-linking. Furthermore, the ability to install the photo-cross-linking amino acid at virtually any position allowed interrogation of the role that carrier protein acylation plays in determining the binding interface with FabF. A conserved carrier protein motif that includes the phosphopantetheinylation site was also shown to play an integral role in maintenance of the AcpP:FabF binding interaction. Our results provide unprecedented insight into the molecular details that describe the AcpP:FabF binding interface and demonstrate that unnatural amino acid based photo-cross-linking is a powerful tool for probing and interrogating protein interactions in complex biosynthetic systems.
探究和研究脂肪酸合成酶和聚酮化合物合成酶中涉及酰基载体蛋白(ACP)的蛋白质相互作用,对于理解复杂天然产物程序化组装的分子基础至关重要。在此,我们利用非天然氨基酸诱变技术,将光交联功能特异性地安装到来自不同系统的酰基载体蛋白以及大肠杆菌II型脂肪酸合成酶的酮合成酶FabF中。随后,采用光交联分析方法系统地探究FabF与多种ACP相互作用的能力,阐明了预期的ACP:FabF相互作用的正交性以及ACP螺旋II中带电残基的作用。此外,通过表面扫描诱变和光交联鉴定了FabF中与同源载体蛋白结合相互作用相关的残基。此外,能够在几乎任何位置安装光交联氨基酸,使得我们能够探究载体蛋白酰化在确定与FabF结合界面中所起的作用。还表明,包含磷酸泛酰巯基乙胺化位点的保守载体蛋白基序在维持AcpP:FabF结合相互作用中起着不可或缺的作用。我们的研究结果为描述AcpP:FabF结合界面的分子细节提供了前所未有的见解,并证明基于非天然氨基酸的光交联是探测和研究复杂生物合成系统中蛋白质相互作用的有力工具。