Wong Derek A, Shaver Zachary M, Cabezas Maria D, Daniel-Ivad Martin, Warfel Katherine F, Prasanna Deepali V, Sobol Sarah E, Fernandez Regina, Nicol Robert, DeLisa Matthew P, Balskus Emily P, Karim Ashty S, Jewett Michael C
bioRxiv. 2024 Nov 25:2024.03.25.586624. doi: 10.1101/2024.03.25.586624.
Post-translational modifications (PTMs) are important for the stability and function of many therapeutic proteins and peptides. Current methods for studying and engineering PTM installing proteins often suffer from low-throughput experimental techniques. Here we describe a generalizable, workflow coupling cell-free protein synthesis (CFPS) with AlphaLISA for the rapid expression and testing of PTM installing proteins. We apply our workflow to two representative classes of peptide and protein therapeutics: ribosomally synthesized and post-translationally modified peptides (RiPPs) and conjugate vaccines. First, we demonstrate how our workflow can be used to characterize the binding activity of RiPP recognition elements, an important first step in RiPP biosynthesis, and be integrated into a biodiscovery pipeline for computationally predicted RiPP products. Then, we adapt our workflow to study and engineer oligosaccharyltransferases (OSTs) involved in conjugate vaccine production, enabling the identification of mutant OSTs and sites within a carrier protein that enable high efficiency production of conjugate vaccines. In total, we expect that our workflow will accelerate design-build-test cycles for engineering PTMs.
翻译后修饰(PTMs)对于许多治疗性蛋白质和肽的稳定性及功能至关重要。目前用于研究和工程化安装修饰的蛋白质的方法往往受到低通量实验技术的困扰。在此,我们描述了一种可推广的工作流程,该流程将无细胞蛋白质合成(CFPS)与AlphaLISA相结合,用于快速表达和测试安装修饰的蛋白质。我们将工作流程应用于两类具有代表性的肽和蛋白质疗法:核糖体合成和翻译后修饰的肽(RiPPs)以及结合疫苗。首先,我们展示了我们的工作流程如何用于表征RiPP识别元件的结合活性,这是RiPP生物合成中的重要第一步,并可整合到用于计算预测RiPP产物的生物发现流程中。然后,我们调整工作流程以研究和工程化参与结合疫苗生产的寡糖基转移酶(OSTs),从而能够鉴定突变的OSTs以及载体蛋白内能够高效生产结合疫苗的位点。总体而言,我们期望我们的工作流程将加速工程化修饰的设计 - 构建 - 测试循环。