A genetically encoded anomalous SAXS ruler to probe the dimensions of intrinsically disordered proteins.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39642200.
- Also identified by DOI 10.1073/pnas.2415220121 and PMC identifier 11648921.
- Licence recorded as CC BY-NC-ND.
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Abstract
Intrinsically disordered proteins (IDPs) adopt ensembles of rapidly fluctuating heterogeneous conformations, influencing their binding capabilities and supramolecular transitions. The primary conformational descriptors for understanding IDP ensembles-the radius of gyration (<i>R</i><sub>G</sub>), measured by small-angle X-ray scattering (SAXS), and the root mean square (rms) end-to-end distance (<i>R</i><sub>E</sub>), probed by fluorescent resonance energy transfer (FRET)-are often reported to produce inconsistent results regarding IDP expansion as a function of denaturant concentration in the buffer. This ongoing debate surrounding the FRET-SAXS discrepancy raises questions about the overall reliability of either method for quantitatively studying IDP properties. To address this discrepancy, we introduce a genetically encoded anomalous SAXS (ASAXS) ruler, enabling simultaneous and direct measurements of <i>R</i><sub>G</sub> and <i>R</i><sub>E</sub> without assuming a specific structural model. This ruler utilizes a genetically encoded noncanonical amino acid with two bromine atoms, providing an anomalous X-ray scattering signal for precise distance measurements. Through this approach, we experimentally demonstrate that the ratio between <i>R</i><sub>E</sub> and <i>R</i><sub>G</sub> varies under different denaturing conditions, highlighting the intrinsic properties of IDPs as the primary source of the observed SAXS-FRET discrepancy rather than shortcomings in either of the two established methods. The developed genetically encoded ASAXS ruler emerges as a versatile tool for both IDPs and folded proteins, providing a unified approach for obtaining complementary and site-specific conformational information in scattering experiments, thereby contributing to a deeper understanding of protein functions.
Medical subject headings
- Scattering, Small Angle
- Intrinsically Disordered Proteins
- X-Ray Diffraction
- Fluorescence Resonance Energy Transfer