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Determination of Crystal Structures01:29

Determination of Crystal Structures

39
In the late 1800s, the revelation that light extended beyond visible wavelengths led to the discovery of X-rays by Wilhelm Roentgen. Recognized as high-energy electromagnetic radiation with short wavelengths, X-rays prompted exploration into their interaction with crystals. Max von Laue proposed in 1912 that the periodic arrangement of atoms, ions, or molecules in crystals would cause them to diffract X-rays, a hypothesis confirmed through experiments with copper sulfate and zinc sulfide...
39

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Re-evaluation of low-resolution crystal structures via interactive molecular-dynamics flexible fitting (iMDFF): a

Tristan Ian Croll1, Gregers Rom Andersen2

  • 1Institute of Health and Biomedical Innovation, Queensland University of Technology, GPO Box 2434, Brisbane, QLD 4001, Australia.

Acta Crystallographica. Section D, Structural Biology
|September 8, 2016
PubMed
Summary

Interactive molecular-dynamics flexible fitting (iMDFF) corrects errors in low-resolution protein structures. This method improves model quality and enables accurate rebuilding in challenging electron density maps, enhancing protein structure determination.

Keywords:
complement C4interactive molecular dynamics flexible fittinglow-resolution structuresmodel buildingstereochemical quality

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Area of Science:

  • Structural Biology
  • Computational Biology
  • Biophysics

Background:

  • High-resolution protein structures are abundant in the Protein Data Bank, but many structures are built manually using low-resolution or weak electron density data.
  • Current model-building tools struggle with accuracy, leading to residual errors like atomic clashes and unfavorable conformations, which can mask larger protein fold errors.
  • Even structures with good Rfree and MolProbity scores at resolutions up to 3.5 Å can contain significant errors, as seen in recent complement C4 structures.

Purpose of the Study:

  • To introduce and evaluate the interactive molecular-dynamics flexible fitting (iMDFF) approach for improving manual model building in low-resolution cryo-EM density maps.
  • To demonstrate iMDFF's effectiveness in detecting and correcting register errors in protein structures, particularly those derived from challenging datasets.
  • To show that iMDFF can yield stereochemically sound protein models comparable to atomic resolution structures, even from low-resolution data.

Main Methods:

  • Utilized a molecular-dynamics force field that explicitly models interatomic forces to reduce the search space for manual rebuilding.
  • Applied the iMDFF approach for user-guided model building in electron density maps with resolutions lower than 3.5 Å.
  • Corrected and re-refined three complement C4 structures (PDB entries 4fxg, 4fxk, 4xam) using iMDFF, achieving MolProbity scores below 1.7.

Main Results:

  • iMDFF significantly reduced the complexity of conformational space, improving the detection and correction of register errors in six β-strands of the complement C4 structures.
  • Manual rebuilding guided by iMDFF converged to solutions with stereochemical quality comparable to atomic resolution structures, even from maps below 3.5 Å resolution.
  • The corrected and refined models led to an extension of the resolution for complement C4b from 4.2 Å to 3.5 Å, validated by paired refinement.

Conclusions:

  • iMDFF is a powerful tool for improving the accuracy and stereochemical quality of protein models built from low-resolution and weak electron density data.
  • The approach facilitates the detection and correction of subtle errors, such as register errors in β-strands, which are difficult to identify with conventional methods.
  • iMDFF enables the refinement of protein structures to higher resolutions and improved quality, advancing the field of structural biology and protein structure determination.