GenNext Technologies, Inc., Half Moon Bay, California 94019, United States.
Department of BioMolecular Sciences, School of Pharmacy, University of Mississippi, University, Mississippi 38677, United States.
J Am Soc Mass Spectrom. 2021 Jul 7;32(7):1601-1609. doi: 10.1021/jasms.0c00471. Epub 2021 Apr 19.
Hydroxyl radical protein footprinting (HRPF) is a powerful and flexible technique for probing changes in protein topography. With the development of the fast photochemical oxidation of proteins (FPOP), it became possible for researchers to perform HRPF in their laboratory on a very short time scale. While FPOP has grown significantly in popularity since its inception, adoption remains limited due to technical and safety issues involved in the operation of a hazardous Class IV UV laser and irreproducibility often caused by improper laser operation and/or differential radical scavenging by various sample components. Here, we present a new integrated FOX (Flash OXidation) Protein Footprinting System. This platform delivers sample flow injection to a facile and safe-to-use high-pressure flash lamp with a flash duration of 10 μs fwhm. Integrated optics collect the radiant light and focus it into the lumen of a capillary flow cell. An inline radical dosimeter measures the hydroxyl radical dose delivered and allows for real-time compensation for differential radical scavenging. A programmable fraction collector collects and quenches only the sample that received the desired effective hydroxyl radical dose, diverting the carrier liquid and improperly oxidized sample to waste. We demonstrate the utility of the FOX Protein Footprinting System by determining the epitope of TNFα recognized by adalimumab. We successfully identify the surface of the protein that serves as the epitope for adalimumab, identifying four of the five regions previously noted by X-ray crystallography while seeing no changes in peptides not involved in the epitope interface. The FOX Protein Footprinting System allows for FPOP-like experiments with real-time dosimetry in a safe, compact, and integrated benchtop platform.
羟基自由基蛋白质足迹法(HRPF)是一种强大而灵活的技术,可用于探测蛋白质形貌的变化。随着蛋白质快速光化学氧化(FPOP)的发展,研究人员可以在非常短的时间内在实验室中进行 HRPF。虽然 FPOP 自成立以来已经得到了显著的发展,但由于涉及到危险的四级紫外激光器的操作以及由于不同样品成分的自由基清除作用不同而导致的重复性差等技术和安全问题,其采用仍然受到限制。在这里,我们提出了一种新的集成 FOX(Flash OXidation)蛋白质足迹系统。该平台将样品以流动注射的方式输送到一个简单易用且安全的高压闪光灯中,其闪光灯持续时间为 10 μs fwhm。集成光学收集辐射光并将其聚焦到毛细管流动池的内腔中。在线自由基剂量计测量传递的羟基自由基剂量,并允许实时补偿不同的自由基清除作用。可编程分馏收集器仅收集和淬灭接收到所需有效羟基自由基剂量的样品,将载体液体和未正确氧化的样品引导至废物。我们通过确定阿达木单抗识别的 TNFα 表位来证明 FOX 蛋白质足迹系统的实用性。我们成功地确定了阿达木单抗的蛋白质表位的表面,确定了先前通过 X 射线晶体学注意到的五个区域中的四个,而在不涉及表位界面的肽中没有看到任何变化。FOX 蛋白质足迹系统允许在安全、紧凑且集成的台式平台中进行类似于 FPOP 的实验,并具有实时剂量测定功能。