Title :
Multiclass Maximum-Likelihood Symmetry Determination and Motif Reconstruction of 3-D Helical Objects From Projection Images for Electron Microscopy
Author :
Lee, Seunghee ; Doerschuk, Peter C. ; Johnson, John E.
Author_Institution :
Sch. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
fDate :
7/1/2011 12:00:00 AM
Abstract :
Many micro- to nano-scale 3-D biological objects have a helical symmetry. Cryo electron microscopy provides 2-D projection images where, however, the images have low SNR and unknown projection directions. The object is described as a helical array of identical motifs, where both the parameters of the helical symmetry and the motif are unknown. Using a detailed image formation model, a maximum-likelihood estimator for the parameters of the symmetry and the 3-D motif based on images of many objects and algorithms for computing the estimate are described. The possibility that the objects are not identical but rather come from a small set of homogeneous classes is included. The first example is based on 316 128 ×100 pixel experimental images of Tobacco Mosaic Virus, has one class, and achieves 12.40-Å spatial resolution in the reconstruction. The second example is based on 400 128 ×128 pixel synthetic images of helical objects constructed from NaK ion channel pore macromolecular complexes, has two classes differing in helical symmetry, and achieves 7.84- and 7.90-Å spatial resolution in the reconstructions for the two classes.
Keywords :
biological techniques; biology computing; biomembrane transport; biothermics; electron microscopy; image reconstruction; image resolution; macromolecules; maximum likelihood estimation; microorganisms; molecular biophysics; physiological models; potassium; sodium; 3D helical objects; K; Na; cryoelectron microscopy; ion channel pore macromolecular complexes; maximum likelihood estimator; microscale 3D biological objects; motif reconstruction; multiclass maximum likelihood symmetry determination; nanoscale 3D biological objects; projection images; spatial resolution; tobacco mosaic virus; Arrays; Fourier transforms; Image reconstruction; Maximum likelihood estimation; Microscopy; Pixel; Scattering; Cryo electron microscopy (cryo EM); Tobacco Mosaic Virus (TMV); helical symmetry; image reconstruction; maximum-likelihood (ML); tomography; virus; Algorithms; Cryoelectron Microscopy; Image Processing, Computer-Assisted; Imaging, Three-Dimensional; Likelihood Functions; Models, Molecular; Potassium Channels; Sodium Channels; Tobacco Mosaic Virus;
Journal_Title :
Image Processing, IEEE Transactions on
DOI :
10.1109/TIP.2011.2107329