Literature DB >> 28074088

Accurate optimization of amino acid form factors for computing small-angle X-ray scattering intensity of atomistic protein structures.

Dudu Tong1, Sichun Yang2, Lanyuan Lu1.   

Abstract

Structure modelling via small-angle X-ray scattering (SAXS) data generally requires intensive computations of scattering intensity from any given biomolecular structure, where the accurate evaluation of SAXS profiles using coarse-grained (CG) methods is vital to improve computational efficiency. To date, most CG SAXS computing methods have been based on a single-bead-per-residue approximation but have neglected structural correlations between amino acids. To improve the accuracy of scattering calculations, accurate CG form factors of amino acids are now derived using a rigorous optimization strategy, termed electron-density matching (EDM), to best fit electron-density distributions of protein structures. This EDM method is compared with and tested against other CG SAXS computing methods, and the resulting CG SAXS profiles from EDM agree better with all-atom theoretical SAXS data. By including the protein hydration shell represented by explicit CG water molecules and the correction of protein excluded volume, the developed CG form factors also reproduce the selected experimental SAXS profiles with very small deviations. Taken together, these EDM-derived CG form factors present an accurate and efficient computational approach for SAXS computing, especially when higher molecular details (represented by the q range of the SAXS data) become necessary for effective structure modelling.

Entities:  

Keywords:  coarse graining; form factors; proteins; small-angle X-ray scattering; solution X-ray scattering

Year:  2016        PMID: 28074088      PMCID: PMC5223287          DOI: 10.1107/S1600576716007962

Source DB:  PubMed          Journal:  J Appl Crystallogr        ISSN: 0021-8898            Impact factor:   3.304


  60 in total

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8.  The multiscale coarse-graining method. I. A rigorous bridge between atomistic and coarse-grained models.

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  2 in total

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2.  Sequence Effects on Size, Shape, and Structural Heterogeneity in Intrinsically Disordered Proteins.

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  2 in total

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