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Ab Initio Molecular-replacement Phasing for Symmetric Helical Membrane Proteins

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Specialty Chemistry
Date 2007 Jan 24
PMID 17242512
Citations 8
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Abstract

Obtaining phases for X-ray diffraction data can be a rate-limiting step in structure determination. Taking advantage of constraints specific to membrane proteins, an ab initio molecular-replacement method has been developed for phasing X-ray diffraction data for symmetric helical membrane proteins without prior knowledge of their structure or heavy-atom derivatives. The described method is based on generating all possible orientations of idealized transmembrane helices and using each model in a molecular-replacement search. The number of models is significantly reduced by taking advantage of geometrical and structural restraints specific to membrane proteins. The top molecular-replacement results are evaluated based on noncrystallographic symmetry (NCS) map correlation, OMIT map correlation and R(free) value after refinement of a polyalanine model. The feasibility of this approach is illustrated by phasing the mechanosensitive channel of large conductance (MscL) with only 4 A diffraction data. No prior structural knowledge was used other than the number of transmembrane helices. The search produced the correct spatial organization and the position in the asymmetric unit of all transmembrane helices of MscL. The resulting electron-density maps were of sufficient quality to automatically build all helical segments of MscL including the cytoplasmic domain. The method does not require high-resolution diffraction data and can be used to obtain phases for symmetrical helical membrane proteins with one or two helices per monomer.

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References
1.
McCoy A, Grosse-Kunstleve R, Storoni L, Read R . Likelihood-enhanced fast translation functions. Acta Crystallogr D Biol Crystallogr. 2005; 61(Pt 4):458-64. DOI: 10.1107/S0907444905001617. View

2.
Cserzo M, Wallin E, Simon I, von Heijne G, Elofsson A . Prediction of transmembrane alpha-helices in prokaryotic membrane proteins: the dense alignment surface method. Protein Eng. 1997; 10(6):673-6. DOI: 10.1093/protein/10.6.673. View

3.
Arkin I, Adams P, MacKenzie K, Lemmon M, Brunger A, Engelman D . Structural organization of the pentameric transmembrane alpha-helices of phospholamban, a cardiac ion channel. EMBO J. 1994; 13(20):4757-64. PMC: 395414. DOI: 10.1002/j.1460-2075.1994.tb06801.x. View

4.
Adams P, Pannu N, Read R, Brunger A . Extending the limits of molecular replacement through combined simulated annealing and maximum-likelihood refinement. Acta Crystallogr D Biol Crystallogr. 1999; 55(Pt 1):181-90. DOI: 10.1107/S0907444998006635. View

5.
Suhre K, Sanejouand Y . On the potential of normal-mode analysis for solving difficult molecular-replacement problems. Acta Crystallogr D Biol Crystallogr. 2004; 60(Pt 4):796-9. DOI: 10.1107/S0907444904001982. View