4.7 Article

Inferential Optimization for Simultaneous Fitting of Multiple Components into a CryoEM Map of Their Assembly

Journal

JOURNAL OF MOLECULAR BIOLOGY
Volume 388, Issue 1, Pages 180-194

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jmb.2009.02.031

Keywords

electron microscopy; protein structure modeling; docking; optimization; macromolecular assemblies

Funding

  1. Edmond J. Safra Bioinformatics Program
  2. Clore Foundation
  3. MRC [G0600084]
  4. Sandler Family Supporting Foundation
  5. National Institutes of Health [R01 GM54762, U54 RR022220, PN2 EY016525, R01 GM083960]
  6. National Science Foundation [IIS-0705196]
  7. Hewlett-Packard
  8. NetApp
  9. IBMIntel
  10. Binational US-Israel Science Foundation
  11. Israel Science Foundation [281/05]
  12. Hermann Minkowski-Minerva Center for Geometry
  13. MRC [G0600084] Funding Source: UKRI
  14. Medical Research Council [G0600084] Funding Source: researchfish

Ask authors/readers for more resources

Models of macromolecular assemblies are essential for a mechanistic description of cellular processes. Such models are increasingly obtained by fitting atomic-resolution structures of components into a density map of the whole assembly. Yet, current density-fitting techniques are frequently insufficient for an unambiguous determination of the positions and orientations of all components. Here, we describe MultiFit, a method used for simultaneously fitting atomic structures of components into their assembly density map at resolutions as low as 25 angstrom. The component positions and orientations are optimized with respect to a scoring function that includes the quality-of-fit of components in the map, the protrusion of components from the map envelope, and the shape complementarity between pairs of components. The scoring function is optimized by our exact inference optimizer DOMINO (Discrete Optimization of Multiple INteracting Objects) that efficiently finds the global minimum in a discrete sampling space. MultiFit was benchmarked on seven assemblies of known structure, consisting of up to seven proteins each. The input atomic structures of the components were obtained from the Protein Data Bank, as well as by comparative modeling based on a 16-99% sequence identity to a template structure. A near-native configuration was usually found as the top-scoring model. Therefore, MultiFit can provide initial configurations for further refinement of many multicomponent assembly structures described by electron microscopy. (C) 2009 Elsevier Ltd. All rights reserved.

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