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Discovery of fragments inducing conformational effects in dynamic proteins using a second-harmonic generation
Edward A FitzGerald1,2, Margaret T Butko3, Pierre Boronat4
1Department of Chemistry - BMC, Uppsala University Uppsala 751 23 Sweden helena.danielson@kemi.uu.se.
RSC Advances
|April 15, 2022
Summary
Second-harmonic generation (SHG) biosensors detect protein conformational changes in real-time. This high-throughput method identified novel fragments modulating acetyl choline binding protein (AChBP) function.
Area of Science:
- Biophysics
- Structural Biology
- Biochemistry
Background:
- Biophysical screening identifies protein-ligand interactions but often fails to reveal functional consequences.
- Assessing functional changes, especially conformational shifts, can be complex and low-throughput.
- Acetyl choline binding protein (AChBP) serves as a model for ligand-gated ion channels (LGICs).
Purpose of the Study:
- To develop and validate a high-throughput second-harmonic generation (SHG) biosensor assay.
- To identify novel fragments that induce conformational changes in AChBP.
- To characterize the binding sites and kinetics of identified modulators.
Main Methods:
- Development of multiwell plate SHG assays using wild-type and mutant AChBP labeled with SHG-active tags.
- Screening of a 1056-fragment library against AChBP variants.
- Orthogonal validation using time-resolved grating-coupled interferometry and X-ray crystallography.
Main Results:
- SHG assays successfully detected distinct conformational changes induced by AChBP modulators.
- Fragment library screening yielded hit rates of 9-22%, identifying novel conformational modulators.
- Kinetic analysis revealed reversible 1:1 interactions, and crystallography confirmed binding to dynamic regulatory sites.
Conclusions:
- SHG biosensing is a sensitive, high-throughput method for detecting protein conformational changes.
- Novel fragments that modulate AChBP conformation and potentially LGIC function were identified.
- The study validates SHG as a powerful tool for fragment-based drug discovery targeting dynamic protein regions.

