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222 peer-reviewed articles • 20,432 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1In situ architecture of a nucleoid-associated biomolecular co-condensate that regulates bacterial cell division5.36Citations (PDF)
2Cryo-ET suggests tubulin chaperones form a subset of microtubule lumenal particles with a role in maintaining neuronal microtubules5.311Citations (PDF)
3In situ structure of actin remodeling during glucose-stimulated insulin secretion using cryo-electron tomography11.012Citations (PDF)
4Combinatorial selective ER-phagy remodels the ER during neurogenesis
Nature Cell Biology, 2024, 26, 378-392
12.846Citations (PDF)
5Autophagy preferentially degrades non-fibrillar polyQ aggregates
Molecular Cell, 2024, 84, 1980-1994.e8
8.750Citations (PDF)
6Structure and topography of the synaptic V-ATPase–synaptophysin complex
Nature, 2024, 631, 899-904
31.359Citations (PDF)
7Visualizing chaperonin function in situ by cryo-electron tomography
Nature, 2024, 633, 459-464
31.330Citations (PDF)
8Cryo-EM structure of single-layered nucleoprotein-RNA complex from Marburg virus11.06Citations (PDF)
9Temporal control of acute protein aggregate turnover by UBE3C and NRF1-dependent proteasomal pathways5.38Citations (PDF)
10A high‐confidence Physcomitrium patens plasmodesmata proteome by iterative scoring and validation reveals diversification of cell wall proteins during evolution
New Phytologist, 2023, 238, 637-653
5.335Citations (PDF)
11The AAA+ chaperone VCP disaggregates Tau fibrils and generates aggregate seeds in a cellular system11.091Citations (PDF)
12In situ snapshots along a mammalian selective autophagy pathway5.328Citations (PDF)
13BBRC for 2023 and beyond - Research papers, reviews and the Carafoli Medal1.50Citations (PDF)
14Munc13- and SNAP25-dependent molecular bridges play a key role in synaptic vesicle priming
Science Advances, 2023, 9,
8.259Citations (PDF)
15Atomic structures of ribosomes at work captured by in situ cryo-electron tomography
Science Bulletin, 2023, 68, 2671-2673
6.60Citations (PDF)
16Vimentin regulates nuclear segmentation in neutrophils5.312Citations (PDF)
17Statistical spatial analysis for cryo-electron tomography3.824Citations (PDF)
18A feature-guided, focused 3D signal permutation method for subtomogram averaging1.57Citations (PDF)
19Amyloid-like aggregating proteins cause lysosomal defects in neurons via gain-of-function toxicity
Life Science Alliance, 2022, 5, e202101185
1.929Citations (PDF)
20Gel‐like inclusions of C‐terminal fragments of TDP‐43 sequester stalled proteasomes in neurons
EMBO Reports, 2022, 23,
3.559Citations (PDF)
21A transformation clustering algorithm and its application in polyribosomes structural profiling
Nucleic Acids Research, 2022, 50, 9001-9011
11.223Citations (PDF)
22Elasticity of podosome actin networks produces nanonewton protrusive forces11.032Citations (PDF)
23Ebola and Marburg virus VP35 coiled-coil validated as antiviral target by tripartite split-GFP complementation
IScience, 2022, 25, 105354
2.59Citations (PDF)
24Cryo-electron tomography: The power of seeing the whole picture1.518Citations (PDF)
25High-resolution structure and biophysical characterization of the nucleocapsid phosphoprotein dimerization domain from the Covid-19 severe acute respiratory syndrome coronavirus 21.5142Citations (PDF)
26Molecular and cellular dynamics of the 26S proteasome1.358Citations (PDF)
27Trans-synaptic assemblies link synaptic vesicles and neuroreceptors
Science Advances, 2021, 7,
8.267Citations (PDF)
28In situ architecture of neuronal α-Synuclein inclusions11.0123Citations (PDF)
29Interphase epichromatin: last refuge for the 30-nm chromatin fiber?
Chromosoma, 2021, 130, 91-102
1.720Citations (PDF)
30Molecular-scale visualization of sarcomere contraction within native cardiomyocytes11.065Citations (PDF)
31Structural basis for VIPP1 oligomerization and maintenance of thylakoid membrane integrity
Cell, 2021, 184, 3643-3659.e23
23.8162Citations (PDF)
32Towards Visual Proteomics at High Resolution
Journal of Molecular Biology, 2021, 433, 167187
3.083Citations (PDF)
33Pathological polyQ expansion does not alter the conformation of the Huntingtin-HAP40 complex
Structure, 2021, 29, 804-809.e5
2.520Citations (PDF)
34Cryo-EM structure of the cetacean morbillivirus nucleoprotein-RNA complex1.520Citations (PDF)
35In situ cryo-electron tomography reveals gradient organization of ribosome biogenesis in intact nucleoli11.084Citations (PDF)
36Deep learning improves macromolecule identification in 3D cellular cryo-electron tomograms
Nature Methods, 2021, 18, 1386-1394
13.6215Citations (PDF)
37Direct visualization of degradation microcompartments at the ER membrane5.398Citations (PDF)
38Template-free detection and classification of membrane-bound complexes in cryo-electron tomograms
Nature Methods, 2020, 17, 209-216
13.692Citations (PDF)
39Cryoelectron Tomography Reveals Nanoscale Organization of the Cytoskeleton and Its Relation to Microtubule Curvature Inside Cells
Structure, 2020, 28, 991-1003.e4
2.542Citations (PDF)
40Investigating the Structure of Neurotoxic Protein Aggregates Inside Cells
Trends in Cell Biology, 2020, 30, 951-966
14.240Citations (PDF)
41The promise and the challenges of cryo‐electron tomography
FEBS Letters, 2020, 594, 3243-3261
1.8351Citations (PDF)
42A Selective Autophagy Pathway for Phase-Separated Endocytic Protein Deposits
Molecular Cell, 2020, 80, 764-778.e7
8.7118Citations (PDF)
43Reliable estimation of membrane curvature for cryo-electron tomography
PLoS Computational Biology, 2020, 16, e1007962
1.951Citations (PDF)
44The evolution of the huntingtin-associated protein 40 (HAP40) in conjunction with huntingtin3.019Citations (PDF)
45Stress- and ubiquitylation-dependent phase separation of the proteasome
Nature, 2020, 578, 296-300
31.3327Citations (PDF)
46Three‐dimensional organization of the cytoskeleton: A cryo‐electron tomography perspective
Protein Science, 2020, 29, 1302-1320
3.544Citations (PDF)
47Cryo-EM structure of the native rhodopsin dimer in nanodiscs
Journal of Biological Chemistry, 2019, 294, 14215-14230
1.388Citations (PDF)
48A cryo-FIB lift-out technique enables molecular-resolution cryo-ET within native Caenorhabditis elegans tissue
Nature Methods, 2019, 16, 757-762
13.6272Citations (PDF)
49Liquid-crystalline phase transitions in lipid droplets are related to cellular states and specific organelle association5.3115Citations (PDF)
50The Architecture of Traveling Actin Waves Revealed by Cryo-Electron Tomography
Structure, 2019, 27, 1211-1223.e5
2.572Citations (PDF)
51Proteasomes: unfoldase-assisted protein degradation machines
Biological Chemistry, 2019, 401, 183-199
1.245Citations (PDF)
52The persuasive power of Ernesto Carafoli1.50Citations (PDF)
53Tricalbin-Mediated Contact Sites Control ER Curvature to Maintain Plasma Membrane Integrity
Developmental Cell, 2019, 51, 476-487.e7
5.4132Citations (PDF)
54Cryo-EM structures of the archaeal PAN-proteasome reveal an around-the-ring ATPase cycle5.375Citations (PDF)
55Structures of Ebola and Reston Virus VP35 Oligomerization Domains and Comparative Biophysical Characterization in All Ebolavirus Species
Structure, 2019, 27, 39-54.e6
2.532Citations (PDF)
56Expanded Coverage of the 26S Proteasome Conformational Landscape Reveals Mechanisms of Peptidase Gating
FASEB Journal, 2019, 33,
2.30Citations (PDF)
57Phase-plate cryo-EM structure of a biased agonist-bound human GLP-1 receptor–Gs complex
Nature, 2018, 555, 121-125
31.3330Citations (PDF)
58The cryo-electron microscopy structure of huntingtin
Nature, 2018, 555, 117-120
31.3191Citations (PDF)
59In Situ Structure of Neuronal C9orf72 Poly-GA Aggregates Reveals Proteasome Recruitment
Cell, 2018, 172, 696-705.e12
23.8410Citations (PDF)
60Phase separation of a yeast prion protein promotes cellular fitness
Science, 2018, 359,
26.5739Citations (PDF)
61Molecular and structural architecture of polyQ aggregates in yeast5.386Citations (PDF)
62Pleomorphic linkers as ubiquitous structural organizers of vesicles in axons
PLoS ONE, 2018, 13, e0197886
1.546Citations (PDF)
63Cryo-EM structure of the active, Gs-protein complexed, human CGRP receptor
Nature, 2018, 561, 492-497
31.3264Citations (PDF)
64Addressing cellular compartmentalization by in situ cryo-electron tomography4.510Citations (PDF)
65Expanded Coverage of the 26S Proteasome Conformational Landscape Reveals Mechanisms of Peptidase Gating
Cell Reports, 2018, 24, 1301-1315.e5
4.4138Citations (PDF)
66Connectivity of centermost chromatophores in Rhodobacter sphaeroides bacteria
Molecular Microbiology, 2018, 109, 812-825
1.935Citations (PDF)
67In situ architecture of the algal nuclear pore complex11.0153Citations (PDF)
68Structure of the adenosine-bound human adenosine A1 receptor–Gi complex
Nature, 2018, 558, 559-563
31.3327Citations (PDF)
69Subtomogram analysis using the Volta phase plate1.581Citations (PDF)
70Structural insights into the functional cycle of the ATPase module of the 26S proteasome5.3182Citations (PDF)
71Phase-plate cryo-EM structure of a class B GPCR–G-protein complex
Nature, 2017, 546, 118-123
31.3484Citations (PDF)
72Dissecting the molecular organization of the translocon-associated protein complex11.0169Citations (PDF)
73Molecular Details Underlying Dynamic Structures and Regulation of the Human 26S Proteasome3.5116Citations (PDF)
74Challenges of Integrating Stochastic Dynamics and Cryo-Electron Tomograms in Whole-Cell Simulations
Journal of Physical Chemistry B, 2017, 121, 3871-3881
2.120Citations (PDF)
75In Situ Architecture and Cellular Interactions of PolyQ Inclusions
Cell, 2017, 171, 179-187.e10
23.8372Citations (PDF)
76Revisiting the Structure of Hemoglobin and Myoglobin with Cryo-Electron Microscopy
Journal of Molecular Biology, 2017, 429, 2611-2618
3.030Citations (PDF)
77Morphologies of synaptic protein membrane fusion interfaces5.365Citations (PDF)
78Isolation and Characterization of Metallosphaera Turreted Icosahedral Virus, a Founding Member of a New Family of Archaeal Viruses2.421Citations (PDF)
79Proteasomes tether to two distinct sites at the nuclear pore complex5.3170Citations (PDF)
80In situ structural studies of tripeptidyl peptidase II (TPPII) reveal spatial association with proteasomes5.333Citations (PDF)
81Expanding the boundaries of cryo-EM with phase plates4.8102Citations (PDF)
82Cryo-EM structure of haemoglobin at 3.2 Å determined with the Volta phase plate11.0232Citations (PDF)
83Optimized cryo-focused ion beam sample preparation aimed at in situ structural studies of membrane proteins1.5287Citations (PDF)
841S-B2-2In Situ Structural Studies of Macro Molecular Complexes in Cells by Cryo-electron Tomography with Volta Phase Plate1.31Citations (PDF)
851S-B2-1Single Particle Analysis Applications of the Volta Phase Plate1.31Citations (PDF)
86Lipoprotein-like particles in a prokaryote: quinone droplets ofThermoplasma acidophilum
FEMS Microbiology Letters, 2016, 363, fnw169
1.15Citations (PDF)
87Cryo-Electron Tomography: Can it Reveal the Molecular Sociology of Cells in Atomic Detail?
Trends in Cell Biology, 2016, 26, 825-837
14.2344Citations (PDF)
88Volta phase plate cryo-EM of the small protein complex Prx311.065Citations (PDF)
89Hierarchical detection and analysis of macromolecular complexes in cryo-electron tomograms using Pyto software
Journal of Structural Biology, 2016, 196, 503-514
1.539Citations (PDF)
90Actin Organization in Cells Responding to a Perforated Surface, Revealed by Live Imaging and Cryo-Electron Tomography
Structure, 2016, 24, 1031-1043
2.556Citations (PDF)
91Structure of the human 26S proteasome at a resolution of 3.9 Å5.3201Citations (PDF)
92Structure of transcribing mammalian RNA polymerase II
Nature, 2016, 529, 551-554
31.3219Citations (PDF)
93Structure-Driven Developments of 26S Proteasome Inhibitors10.625Citations (PDF)
94Removing Contamination-Induced Reconstruction Artifacts from Cryo-electron Tomograms
Biophysical Journal, 2016, 110, 850-859
1.530Citations (PDF)
95Site-Specific Cryo-focused Ion Beam Sample Preparation Guided by 3D Correlative Microscopy
Biophysical Journal, 2016, 110, 860-869
1.5241Citations (PDF)
96In Situ Cryo-Electron Tomography: A Post-Reductionist Approach to Structural Biology
Journal of Molecular Biology, 2016, 428, 332-343
3.0209Citations (PDF)
97C3-O-05Electron Cryo-Tomography of<i>Thermoplasma acidophilum</i>with Volta Phase Plate
Microscopy (Oxford, England), 2015, 64, i69.1-i69
1.30Citations (PDF)
98A3Near-atomic Resolution Single Particle Analysis with the Volta Phase Plate
Microscopy (Oxford, England), 2015, 64, i9.2-i9
1.30Citations (PDF)
99Structural characterization of the interaction of Ubp6 with the 26S proteasome5.3110Citations (PDF)
100Electron cryotomography of vitrified cells with a Volta phase plate
Journal of Structural Biology, 2015, 190, 143-154
1.5152Citations (PDF)
101Regulated assembly of a supramolecular centrosome scaffold in vitro
Science, 2015, 348, 808-812
26.5212Citations (PDF)
102In situ structural analysis of Golgi intracisternal protein arrays5.3114Citations (PDF)
103A focused ion beam milling and lift-out approach for site-specific preparation of frozen-hydrated lamellas from multicellular organisms
Journal of Structural Biology, 2015, 192, 262-269
1.5169Citations (PDF)
104Cryo-focused Ion Beam Sample Preparation for Imaging Vitreous Cells by Cryo-electron Tomography
Bio-protocol, 2015, 5,
0.2140Citations (PDF)
105Crystal structure of the proteasomal deubiquitylation module Rpn8-Rpn115.3135Citations (PDF)
106Deep classification of a large cryo-EM dataset defines the conformational landscape of the 26S proteasome5.3190Citations (PDF)
107Quantitative live-cell imaging reveals spatio-temporal dynamics and cytoplasmic assembly of the 26S proteasome11.0142Citations (PDF)
108Volta potential phase plate for in-focus phase contrast transmission electron microscopy5.3506Citations (PDF)
109Coordinate transformation based cryo-correlative methods for electron tomography and focused ion beam milling
Ultramicroscopy, 2014, 143, 15-23
1.735Citations (PDF)
110Allosteric Effects in the Regulation of 26S Proteasome Activities
Journal of Molecular Biology, 2013, 425, 1415-1423
3.028Citations (PDF)
111Unveiling the Long-Held Secrets of the 26S Proteasome
Structure, 2013, 21, 1551-1562
2.565Citations (PDF)
112Opening windows into the cell: focused-ion-beam milling for cryo-electron tomography4.8235Citations (PDF)
113Localization of the regulatory particle subunit Sem1 in the 26S proteasome1.528Citations (PDF)
114Structure of the 26S proteasome with ATP-γS bound provides insights into the mechanism of nucleotide-dependent substrate translocation5.3165Citations (PDF)
115Three-dimensional architecture of actin filaments in Listeria monocytogenes comet tails5.398Citations (PDF)
116Cryo-electron tomography: The challenge of doing structural biology in situ
Journal of Cell Biology, 2013, 202, 407-419
3.6401Citations (PDF)
117Focused ion beam micromachining of eukaryotic cells for cryoelectron tomography5.3461Citations (PDF)
118Unraveling the structure of membrane proteins in situ by transfer function corrected cryo-electron tomography
Journal of Structural Biology, 2012, 180, 488-496
1.555Citations (PDF)
119Molecular architecture of the 26S proteasome holocomplex determined by an integrative approach5.3439Citations (PDF)
120Blotting protein complexes from native gels to electron microscopy grids
Nature Methods, 2012, 9, 182-184
13.610Citations (PDF)
121Automated segmentation of electron tomograms for a quantitative description of actin filament networks
Journal of Structural Biology, 2012, 177, 135-144
1.5228Citations (PDF)
122Structure and function of tripeptidyl peptidase II, a giant cytosolic protease1.325Citations (PDF)
123Electron Microscopy of Biological Materials at the Nanometer Scale8.3121Citations (PDF)
124The Structure of Human Tripeptidyl Peptidase II as Determined by a Hybrid Approach
Structure, 2012, 20, 593-603
2.520Citations (PDF)
125Force Spectroscopy of Substrate Molecules En Route to the Proteasome's Active Sites
Biophysical Journal, 2011, 100, 489-497
1.510Citations (PDF)
126Molecular ruler of tripeptidylpeptidase II: Mechanistic principle of exopeptidase selectivity1.56Citations (PDF)
127The Catalytic Activity of Ubp6 Enhances Maturation of the Proteasomal Regulatory Particle
Molecular Cell, 2011, 42, 637-649
8.764Citations (PDF)
128Maximum likelihood based classification of electron tomographic data1.560Citations (PDF)
129Computer controlled cryo-electron microscopy – TOM2 a software package for high-throughput applications
Journal of Structural Biology, 2011, 175, 394-405
1.550Citations (PDF)
130Insights into the molecular organization of the neuron by cryo-electron tomography
Microscopy (Oxford, England), 2011, 60, S137-S148
1.336Citations (PDF)
131Noise Contributions in an Inducible Genetic Switch: A Whole-Cell Simulation Study
PLoS Computational Biology, 2011, 7, e1002010
1.993Citations (PDF)
132Geometric constrains for detecting short actin filaments by cryogenic electron tomography
PMC Biophysics, 2010, 3,
2.141Citations (PDF)
133Hybrid molecular structure of the giant protease tripeptidyl peptidase II5.928Citations (PDF)
134Structure of the 26S proteasome from Schizosaccharomyces pombe at subnanometer resolution5.3134Citations (PDF)
135Toward an Integrated Structural Model of the 26S Proteasome3.551Citations (PDF)
136The Three-Dimensional Organization of Polyribosomes in Intact Human Cells
Molecular Cell, 2010, 39, 560-569
8.7169Citations (PDF)
137Distinct in situ structures of the Borrelia flagellar motor1.552Citations (PDF)
138Micromachining tools and correlative approaches for cellular cryo-electron tomography
Journal of Structural Biology, 2010, 172, 169-179
1.5260Citations (PDF)
139Quantitative Proteome and Transcriptome Analysis of the Archaeon Thermoplasma acidophilum Cultured under Aerobic and Anaerobic Conditions
Journal of Proteome Research, 2010, 9, 4839-4850
2.343Citations (PDF)
140Visualizing cells at the nanoscale7.4218Citations (PDF)
141The Native 3D Organization of Bacterial Polysomes
Cell, 2009, 136, 261-271
23.8266Citations (PDF)
142An atomic model AAA-ATPase/20S core particle sub-complex of the 26S proteasome1.557Citations (PDF)
143A voyage to the inner space of cells
Protein Science, 2009, 14, 257-269
3.527Citations (PDF)
144Cryo-electron tomography of cells: connecting structure and function1.7116Citations (PDF)
145Electron tomography of vitreous sections from cultured mammalian cells
Journal of Structural Biology, 2008, 161, 384-392
1.586Citations (PDF)
146The future is hybrid
Journal of Structural Biology, 2008, 163, 186-195
1.563Citations (PDF)
147Three-dimensional architecture of murine rod outer segments determined by cryoelectron tomography
Journal of Cell Biology, 2007, 177, 917-925
3.6207Citations (PDF)
148Mass Spectrometry Reveals the Missing Links in the Assembly Pathway of the Bacterial 20 S Proteasome
Journal of Biological Chemistry, 2007, 282, 18448-18457
1.357Citations (PDF)
149Localization of Protein Complexes by Pattern Recognition
Methods in Cell Biology, 2007, , 615-638
3.131Citations (PDF)
150Proteomics Analysis of Thermoplasma acidophilum with a Focus on Protein Complexes3.516Citations (PDF)
151Structural analysis of the 26S proteasome by cryoelectron tomography1.536Citations (PDF)
152Correlative microscopy: Bridging the gap between fluorescence light microscopy and cryo-electron tomography
Journal of Structural Biology, 2007, 160, 135-145
1.5400Citations (PDF)
153Multiscale imaging of neurons grown in culture: From light microscopy to cryo-electron tomography
Journal of Structural Biology, 2007, 160, 146-156
1.5117Citations (PDF)
154An idea whose time has come
Genome Biology, 2007, 8, 408
12.16Citations (PDF)
155The β-propeller domain of the trilobed protease fromPyrococcus furiosusreveals an open Velcro topology3.27Citations (PDF)
156Snapshots of nuclear pore complexes in action captured by cryo-electron tomography
Nature, 2007, 449, 611-615
31.3350Citations (PDF)
157The molecular sociology of the cell
Nature, 2007, 450, 973-982
31.3550Citations (PDF)
158Whole Cell Cryo-Electron Tomography Reveals Distinct Disassembly Intermediates of Vaccinia Virus
PLoS ONE, 2007, 2, e420
1.577Citations (PDF)
159Mapping 70S ribosomes in intact cells by cryoelectron tomography and pattern recognition
Journal of Structural Biology, 2006, 156, 334-341
1.5144Citations (PDF)
160A visual approach to proteomics68.4229Citations (PDF)
161Proteasome Assembly Triggers a Switch Required for Active-Site Maturation
Structure, 2006, 14, 1179-1188
2.537Citations (PDF)
162Size Matters for the Tripeptidylpeptidase II Complex from Drosophila
Journal of Biological Chemistry, 2006, 281, 25723-25733
1.318Citations (PDF)
163STRUCTURAL STUDIES BY ELECTRON TOMOGRAPHY: From Cells to Molecules14.1661Citations (PDF)
164Morphological Characterization of Molecular Complexes Present in the Synaptic Cleft
Structure, 2005, 13, 423-434
2.5108Citations (PDF)
165Cryo-electron tomography of vaccinia virus5.3197Citations (PDF)
1663D structure of eukaryotic flagella in a quiescent state revealed by cryo-electron tomography5.3163Citations (PDF)
167Retrovirus envelope protein complex structure in situ studied by cryo-electron tomography5.3319Citations (PDF)
168VAT, the Thermoplasma Homolog of Mammalian p97/VCP, Is an N Domain-regulated Protein Unfoldase*
Journal of Biological Chemistry, 2005, 280, 42856-42862
1.367Citations (PDF)
169Molecular architecture and assembly mechanism of Drosophila tripeptidyl peptidase II5.331Citations (PDF)
170TOM software toolbox: acquisition and analysis for electron tomography
Journal of Structural Biology, 2005, 149, 227-234
1.5471Citations (PDF)
171From proteomic inventory to architecture
FEBS Letters, 2005, 579, 933-937
1.880Citations (PDF)
172Mapping molecular landscapes inside cells
Biological Chemistry, 2004, 385, 865-872
1.249Citations (PDF)
173Thermoplasma acidophilum TAA43 is an archaeal member of the eukaryotic meiotic branch of AAA ATPases1.28Citations (PDF)
174The N-terminal coiled coil of the Rhodococcus erythropolis ARC AAA ATPase is neither necessary for oligomerization nor nucleotide hydrolysis
Journal of Structural Biology, 2004, 146, 155-165
1.522Citations (PDF)
175New insights into the structural organization of eukaryotic and prokaryotic cytoskeletons using cryo-electron tomography
Experimental Cell Research, 2004, 301, 38-42
2.139Citations (PDF)
176From words to literature in structural proteomics
Nature, 2003, 422, 216-225
31.3479Citations (PDF)
177Pyrodictium cannulae enter the periplasmic space but do not enter the cytoplasm, as revealed by cryo-electron tomography1.5105Citations (PDF)
178Characterization of a Novel Intracellular Endopeptidase of the α/β Hydrolase Family from Streptomyces coelicolor A3(2)
Journal of Bacteriology, 2003, 185, 496-503
2.29Citations (PDF)
179Identification of macromolecular complexes in cryoelectron tomograms of phantom cells5.3275Citations (PDF)
180Electron cryo-microscopy of VAT, the archaeal p97/CDC48 homologue from Thermoplasma acidophilum 1 1Edited by D. Rees
Journal of Molecular Biology, 2002, 317, 673-681
3.035Citations (PDF)
181In vivo veritas: electron cryotomography of cells
Trends in Biotechnology, 2002, 20, S40-S44
8.035Citations (PDF)
182Electron tomography: towards visualizing the molecular organization of the cytoplasm4.8229Citations (PDF)
183Prospects of electron cryotomography to visualize macromolecular complexes inside cellular compartments: implications of crowding
Biophysical Chemistry, 2002, 100, 577-591
1.5106Citations (PDF)
184Macromolecular Architecture in Eukaryotic Cells Visualized by Cryoelectron Tomography
Science, 2002, 298, 1209-1213
26.5827Citations (PDF)
185Title is missing!1.544Citations (PDF)
186A giant protease with a twist: the TPP II complex from Drosophila studied by electron microscopy
EMBO Journal, 2002, 21, 5979-5984
5.234Citations (PDF)
187The Chaperones of the Archaeon Thermoplasma acidophilum
Journal of Structural Biology, 2001, 135, 126-138
1.529Citations (PDF)
188FhuA-mediated phage genome transfer into liposomes
Current Biology, 2001, 11, 1168-1175
2.5116Citations (PDF)
189Tricorn Protease in Bacteria: Characterization of the Enzyme from Streptomyces coelicolor1.213Citations (PDF)
190The genome sequence of the thermoacidophilic scavenger Thermoplasma acidophilum
Nature, 2000, 407, 508-513
31.3396Citations (PDF)
191Macromolecular electron microscopy in the era of structural genomics7.4142Citations (PDF)
192The Regulatory Complex of Drosophila melanogaster 26s Proteasomes
Journal of Cell Biology, 2000, 150, 119-130
3.6142Citations (PDF)
193Toward detecting and identifying macromolecules in a cellular context: Template matching applied to electron tomograms5.3247Citations (PDF)
194Cryo-electron Tomography of Neurospora Mitochondria1.5186Citations (PDF)
195Rotary and Unidirectional Metal Shadowing of VAT: Localization of the Substrate-Binding Domain
Journal of Structural Biology, 2000, 132, 162-168
1.55Citations (PDF)
196The Janus Face of the Archaeal Cdc48/p97 Homologue VAT: Protein Folding versus Unfolding1.277Citations (PDF)
197Electron tomography of molecules and cells
Trends in Cell Biology, 1999, 9, 81-85
14.2330Citations (PDF)
198Novel molecular architecture of the multimeric archaeal PEP-synthase homologue (MAPS) from Staphylothermus marinus 1 1Edited by P. E. Wright
Journal of Molecular Biology, 1999, 290, 347-361
3.014Citations (PDF)
199Capsids of Tricorn Protease Studied by Electron Cryomicroscopy1.522Citations (PDF)
200Group II chaperonin in an open conformation examined by electron tomography
Nature Structural Biology, 1998, 5, 855-857
11.0100Citations (PDF)
201The Proteasome: Paradigm of a Self-Compartmentalizing Protease
Cell, 1998, 92, 367-380
23.81,484Citations (PDF)
202The Role of Tricorn Protease and Its Aminopeptidase-Interacting Factors in Cellular Protein Degradation
Cell, 1998, 95, 637-648
23.8116Citations (PDF)
203Characterization of ARC, a divergent member of the AAA ATPase family from Rhodococcus erythropolis3.0110Citations (PDF)
204Electron Tomography of Ice-Embedded Prokaryotic Cells
Biophysical Journal, 1998, 74, 1031-1042
1.5202Citations (PDF)
205Energy filtered electron tomography of ice-embedded actin and vesicles
Biophysical Journal, 1997, 72, 482-489
1.5101Citations (PDF)
206The thermosome: alternating α and β-subunits within the chaperonin of the archaeon Thermoplasma acidophilum
Journal of Molecular Biology, 1997, 267, 142-149
3.056Citations (PDF)
207Perspectives of Molecular and Cellular Electron Tomography
Journal of Structural Biology, 1997, 120, 276-308
1.5398Citations (PDF)
208Electron Tomography of Single Ice-Embedded Macromolecules: Three-Dimensional Alignment and Classification
Journal of Structural Biology, 1997, 120, 387-395
1.599Citations (PDF)
209Tricorn Protease Exists as an Icosahedral Supermolecule In Vivo
Molecular Cell, 1997, 1, 59-65
8.775Citations (PDF)
210Self-compartmentalizing proteases7.4226Citations (PDF)
211Determination of the inelastic mean free path in ice by examination of tilted vesicles and automated most probable loss imaging
Ultramicroscopy, 1996, 63, 169-179
1.797Citations (PDF)
212Three-dimensional structure of lipid vesicles embedded in vitreous ice and investigated by automated electron tomography
Biophysical Journal, 1995, 68, 1416-1422
1.594Citations (PDF)
213Towards automatic electron tomography II. Implementation of autofocus and low-dose procedures
Ultramicroscopy, 1993, 49, 109-120
1.7129Citations (PDF)
214Towards automatic electron tomography
Ultramicroscopy, 1992, 40, 71-87
1.7211Citations (PDF)
215Native architecture of the Chlamydomonas chloroplast revealed by in situ cryo-electron tomography
ELife, 0, 4,
1.0294Citations (PDF)
216Cryo-EM single particle analysis with the Volta phase plate
ELife, 0, 5,
1.0158Citations (PDF)
217The structure of the COPI coat determined within the cell
ELife, 0, 6,
1.0197Citations (PDF)
218Using the Volta phase plate with defocus for cryo-EM single particle analysis
ELife, 0, 6,
1.0127Citations (PDF)
219Charting the native architecture of Chlamydomonas thylakoid membranes with single-molecule precision
ELife, 0, 9,
1.0150Citations (PDF)
220Determinants shaping the nanoscale architecture of the mouse rod outer segment
ELife, 0, 10,
1.052Citations (PDF)
221The subcellular architecture of Paratrypanosoma confusum revealed by CryoET: A window into early trypanosome evolution5.35Citations (PDF)
222Metabolically regulated proteasome supramolecular organization in situ
Cell, 0, 189, 1153-1169.e16
23.88Citations (PDF)