Related Experiment Video
Updated: Nov 17, 2025

Laser-free Hydroxyl Radical Protein Footprinting to Perform Higher Order Structural Analysis of Proteins
Published on: June 4, 2021
Investigation of D76N β2-Microglobulin Using Protein Footprinting and Structural Mass Spectrometry
Owen Cornwell1, James R Ault2, Nicholas J Bond1
1Biopharmaceuticals R & D, AstraZeneca, Granta Park, Cambridge CB21 6GP, U.K.
Abstract:
NMR studies and X-ray crystallography have shown that the structures of the 99-residue amyloidogenic protein β2-microglobulin (β2m) and its more aggregation-prone variant, D76N, are indistinguishable, and hence, the reason for the striking difference in their aggregation propensities remains elusive. Here, we have employed two protein footprinting methods, hydrogen-deuterium exchange (HDX) and fast photochemical oxidation of proteins (FPOP), in conjunction with ion mobility-mass spectrometry, to probe the differences in conformational dynamics of the two proteins. Using HDX-MS, a clear difference in HDX protection is observed between these two proteins in the E-F loop (residues 70-77) which contains the D76N substitution, with a significantly higher deuterium uptake being observed in the variant protein. Conversely, following FPOP-MS only minimal differences in the level of oxidation between the two proteins are observed in the E-F loop region, suggesting only modest side-chain movements in that area. Together the HDX-MS and FPOP-MS data suggest that a tangible perturbation to the hydrogen-bonding network in the E-F loop has taken place in the D76N variant and furthermore illustrate the benefit of using multiple complementary footprinting methods to address subtle, but possibly biologically important, differences between highly similar proteins.
Insights
The D76N variant of beta2-microglobulin (β2m) shows increased aggregation despite similar structures. Complementary protein footprinting methods revealed subtle differences in conformational dynamics, particularly in the E-F loop, explaining the aggregation propensity.
Area of Science:
- Biochemistry
- Structural Biology
- Protein Dynamics
Background:
- Beta2-microglobulin (β2m) is a 99-residue amyloidogenic protein implicated in various diseases.
- A specific variant, D76N β2m, exhibits significantly higher aggregation propensity compared to the wild-type protein.
- Previous structural studies using NMR and X-ray crystallography showed no discernible structural differences between wild-type and D76N β2m, leaving the cause of aggregation disparity unexplained.
Purpose of the Study:
- To investigate the subtle differences in conformational dynamics between wild-type β2m and the aggregation-prone D76N variant.
- To elucidate the molecular basis for the increased aggregation propensity of the D76N β2m variant.
- To demonstrate the utility of combining multiple protein footprinting techniques for analyzing highly similar proteins.
Main Methods:
- Employed two complementary protein footprinting techniques: hydrogen-deuterium exchange mass spectrometry (HDX-MS) and fast photochemical oxidation of proteins mass spectrometry (FPOP-MS).
- Utilized ion mobility-mass spectrometry to enhance the analysis of conformational dynamics.
- Focused on probing differences in the E-F loop region, where the D76N substitution occurs.
Main Results:
- HDX-MS revealed significantly higher deuterium uptake in the E-F loop of the D76N variant, indicating increased solvent accessibility and/or reduced hydrogen bonding.
- FPOP-MS showed only minimal differences in oxidation levels within the E-F loop, suggesting limited large-scale side-chain movements.
- The combined data suggest a perturbation of the hydrogen-bonding network within the E-F loop of the D76N variant.
Conclusions:
- The D76N substitution in β2m leads to subtle but significant alterations in the protein's conformational dynamics, specifically affecting the hydrogen-bonding network in the E-F loop.
- These dynamic differences, rather than static structural changes, likely account for the increased aggregation propensity of the D76N variant.
- The study highlights the power of integrating complementary biophysical techniques like HDX-MS and FPOP-MS to uncover functionally relevant, subtle differences between closely related protein structures.
Related Concept Videos
MALDI-TOF Mass Spectrometry
Matrix-assisted laser desorption ionization (MALDI) is a commonly...
Peptide Identification Using Tandem Mass Spectrometry
This technique helps gather information regarding the protein from which the peptide was obtained and to study the peptides’ amino acid sequence. Identifying peptides from a complex mixture is an important component of the growing field of...

