Cryo-EM reconstruction of continuous heterogeneity by Laplacian spectral volumes

被引:33
|
作者
Moscovich, Amit [1 ]
Halevi, Amit [1 ]
Anden, Joakim [2 ]
Singer, Amit [1 ,3 ]
机构
[1] Princeton Univ, Program Appl & Computat Math, Princeton, NJ 08544 USA
[2] Flatiron Inst, Ctr Computat Math, New York, NY USA
[3] Princeton Univ, Dept Math, Princeton, NJ 08544 USA
关键词
single particle electron cryomicroscopy; heterogeneity; tomographic reconstruction; molecular conformation space; manifold learning; Laplacian eigenmaps; diffusion maps; FOURIER; CLASSIFICATION; VARIANCE; MACROMOLECULES; VARIABILITY; PROJECTIONS; COVARIANCE;
D O I
10.1088/1361-6420/ab4f55
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
Single-particle electron cryomicroscopy is an essential tool for high-resolution 3D reconstruction of proteins and other biological macromolecules. An important challenge in cryo-EM is the reconstruction of non-rigid molecules with parts that move and deform. Traditional reconstruction methods fail in these cases, resulting in smeared reconstructions of the moving parts. This poses a major obstacle for structural biologists, who need high-resolution reconstructions of entire macromolecules, moving parts included. To address this challenge, we present a new method for the reconstruction of macromolecules exhibiting continuous heterogeneity. The proposed method uses projection images from multiple viewing directions to construct a graph Laplacian through which the manifold of three-dimensional conformations is analyzed. The 3D molecular structures are then expanded in a basis of Laplacian eigenvectors, using a novel generalized tomographic reconstruction algorithm to compute the expansion coefficients. These coefficients, which we name spectral volumes, provide a high-resolution visualization of the molecular dynamics. We provide a theoretical analysis and evaluate the method empirically on several simulated data sets.
引用
收藏
页数:31
相关论文
共 50 条
  • [1] Methods for Cryo-EM Single Particle Reconstruction of Macromolecules Having Continuous Heterogeneity
    Toader, Bogdan
    Sigworth, Fred J.
    Lederman, Roy R.
    JOURNAL OF MOLECULAR BIOLOGY, 2023, 435 (09)
  • [2] Fast multiscale reconstruction for Cryo-EM
    Donati, Laurene
    Nilchian, Masih
    Sorzano, Carlos Oscar S.
    Unser, Michael
    JOURNAL OF STRUCTURAL BIOLOGY, 2018, 204 (03) : 543 - 554
  • [3] Cryo-EM Workshop: Lectures on Cryo-EM Image Formation and 3-D Reconstruction
    Jiang, Wen
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2019, 75 : A256 - A256
  • [4] Advances in modelling continuous heterogeneity from single particle cryo-EM data
    Punjani, Ali
    Fleet, David
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2021, 77 : A235 - A235
  • [5] Sparse Fourier Backpropagation in Cryo-EM Reconstruction
    Kimanius, Dari
    Jamali, Kiarash
    Scheres, Sjors H. W.
    ADVANCES IN NEURAL INFORMATION PROCESSING SYSTEMS 35 (NEURIPS 2022), 2022,
  • [6] Amortized Inference for Heterogeneous Reconstruction in Cryo-EM
    Levy, Axel
    Wetzstein, Gordon
    Martel, Julien
    Poitevin, Frederic
    Zhong, Ellen D.
    ADVANCES IN NEURAL INFORMATION PROCESSING SYSTEMS 35 (NEURIPS 2022), 2022,
  • [7] Cryo-EM
    Nogales, Eva
    CURRENT BIOLOGY, 2018, 28 (19) : R1127 - R1128
  • [8] Covariance Matrix Estimation for the Cryo-EM Heterogeneity Problem
    Katsevich, E.
    Katsevich, A.
    Singer, A.
    SIAM JOURNAL ON IMAGING SCIENCES, 2015, 8 (01): : 126 - 185
  • [9] Resolution of Heterogeneity in Nicotinic Receptor Assembly by Cryo-EM
    Walsh, Richard M., Jr.
    Roh, Soung-Hun
    Hibbs, Ryan E.
    BIOPHYSICAL JOURNAL, 2018, 114 (03) : 10A - 11A
  • [10] Spectral decomposition of atomic structures in heterogeneous cryo-EM
    Esteve-Yague, Carlos
    Diepeveen, Willem
    Oktem, Ozan
    Schonlieb, Carola-Bibiane
    INVERSE PROBLEMS, 2023, 39 (03)