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1.
J Am Soc Mass Spectrom ; 32(7): 1601-1609, 2021 Jul 07.
Article in English | MEDLINE | ID: mdl-33872496

ABSTRACT

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 via 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.


Subject(s)
Protein Footprinting/instrumentation , Protein Footprinting/methods , Chromatography, Liquid , Epitopes/chemistry , Equipment Design , HEK293 Cells , Humans , Oxidation-Reduction , Protein Conformation , Tandem Mass Spectrometry , Tumor Necrosis Factor-alpha/analysis , Tumor Necrosis Factor-alpha/chemistry , Tumor Necrosis Factor-alpha/genetics
2.
Protein Pept Lett ; 26(1): 55-60, 2019.
Article in English | MEDLINE | ID: mdl-30484397

ABSTRACT

BACKGROUND: First developed in the 1990's at the National Synchrotron Light Source, xray synchrotron footprinting is an ideal technique for the analysis of solution-state structure and dynamics of macromolecules. Hydroxyl radicals generated in aqueous samples by intense x-ray beams serve as fine probes of solvent accessibility, rapidly and irreversibly reacting with solvent exposed residues to provide a "snapshot" of the sample state at the time of exposure. Over the last few decades, improvements in instrumentation to expand the technology have continuously pushed the boundaries of biological systems that can be studied using the technique. CONCLUSION: Dedicated synchrotron beamlines provide important resources for examining fundamental biological mechanisms of folding, ligand binding, catalysis, transcription, translation, and macromolecular assembly. The legacy of synchrotron footprinting at NSLS has led to significant improvement in our understanding of many biological systems, from identifying key structural components in enzymes and transporters to in vivo studies of ribosome assembly. This work continues at the XFP (17-BM) beamline at NSLS-II and facilities at ALS, which are currently accepting proposals for use.


Subject(s)
Protein Footprinting/instrumentation , Protein Footprinting/methods , Synchrotrons/instrumentation , Crystallography, X-Ray , Equipment Design , Proteins/analysis , Proteins/chemistry
3.
Protein Pept Lett ; 23(3): 309-22, 2016.
Article in English | MEDLINE | ID: mdl-26833224

ABSTRACT

Synchrotron X-ray Footprinting is a powerful in situ hydroxyl radical labeling method for analysis of protein structure, interactions, folding and conformation change in solution. In this method, water is ionized by high flux density broad band synchrotron X-rays to produce a steady-state concentration of hydroxyl radicals, which then react with solvent accessible side-chains. The resulting stable modification products are analyzed by liquid chromatography coupled to mass spectrometry. A comparative reactivity rate between known and unknown states of a protein provides local as well as global information on structural changes, which is then used to develop structural models for protein function and dynamics. In this review we describe the XF-MS method, its unique capabilities and its recent technical advances at the Advanced Light Source. We provide a comparison of other hydroxyl radical and mass spectrometry based methods with XFMS. We also discuss some of the latest developments in its usage for studying bound water, transmembrane proteins and photosynthetic protein components, and the synergy of the method with other synchrotron based structural biology methods.


Subject(s)
Protein Footprinting/instrumentation , Proteins/chemistry , Synchrotrons , Hydroxyl Radical , Mass Spectrometry/instrumentation , Models, Molecular , Protein Conformation , X-Rays
4.
Lab Chip ; 15(7): 1646-50, 2015 Apr 07.
Article in English | MEDLINE | ID: mdl-25666234

ABSTRACT

The structure of macromolecules and their complexes dictate their biological function. In "footprinting", the solvent accessibility of the residues that constitute proteins, DNA and RNA can be determined from their reactivity to an exogenous reagent such as the hydroxyl radical (·OH). While ·OH generation for protein footprinting is achieved by radiolysis, photolysis and electrochemistry, we present a simpler solution. A thin film of pyrite (cubic FeS2) nanocrystals deposited onto a shape memory polymer (commodity shrink-wrap film) generates sufficient ·OH via Fenton chemistry for oxidative footprinting analysis of proteins. We demonstrate that varying either time or H2O2 concentration yields the required ·OH dose-oxidation response relationship. A simple and scalable sample handling protocol is enabled by thermoforming the "pyrite shrink-wrap laminate" into a standard microtiter plate format. The low cost and malleability of the laminate facilitates its integration into high throughput screening and microfluidic devices.


Subject(s)
Iron/chemistry , Protein Footprinting/instrumentation , Protein Footprinting/methods , Sulfides/chemistry , Equipment Design , Hydrogen Peroxide , Proteins/analysis , Proteins/chemistry
5.
J Synchrotron Radiat ; 21(Pt 4): 690-9, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24971962

ABSTRACT

X-ray footprinting (XF) is an important structural biology tool used to determine macromolecular conformations and dynamics of both nucleic acids and proteins in solution on a wide range of timescales. With the impending shut-down of the National Synchrotron Light Source, it is ever more important that this tool continues to be developed at other synchrotron facilities to accommodate XF users. Toward this end, a collaborative XF program has been initiated at the Advanced Light Source using the white-light bending-magnet beamlines 5.3.1 and 3.2.1. Accessibility of the microsecond time regime for protein footprinting is demonstrated at beamline 5.3.1 using the high flux density provided by a focusing mirror in combination with a micro-capillary flow cell. It is further reported that, by saturating samples with nitrous oxide, the radiolytic labeling efficiency is increased and the imprints of bound versus bulk water can be distinguished. These results both demonstrate the suitability of the Advanced Light Source as a second home for the XF experiment, and pave the way for obtaining high-quality structural data on complex protein samples and dynamics information on the microsecond timescale.


Subject(s)
Crystallography, X-Ray/instrumentation , Protein Footprinting/instrumentation , Proteins/chemistry , Proteins/ultrastructure , Synchrotrons/instrumentation , Binding Sites , Equipment Design , Equipment Failure Analysis , Protein Binding , Protein Conformation
6.
Nat Methods ; 7(10): 821-4, 2010 Oct.
Article in English | MEDLINE | ID: mdl-20871617

ABSTRACT

We introduce quantitative dynamic footprinting microscopy to resolve neutrophil rolling on P-selectin. We observed that the footprint of a rolling neutrophil was fourfold larger than previously thought, and that P-selectin-PSGL-1 bonds were relaxed at the leading edge of the rolling cell, compressed under the cell center, and stretched at the trailing edge. Each rolling neutrophil formed three to four long tethers that extended up to 16 µm behind the rolling cell.


Subject(s)
Leukocyte Rolling/physiology , Membrane Glycoproteins/genetics , Microscopy, Fluorescence/methods , Neutrophils/physiology , P-Selectin/genetics , Protein Footprinting/methods , Animals , Green Fluorescent Proteins/genetics , Mice , Mice, Transgenic , Microfluidic Analytical Techniques/instrumentation , Microfluidic Analytical Techniques/methods , Microscopy, Fluorescence/instrumentation , Muramidase/genetics , Neutrophils/metabolism , Neutrophils/ultrastructure , Protein Footprinting/instrumentation
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