210(top 1%)
PR articles
38.0K(top 0.1%)
PR citations
102(top 0.1%)
PR h-index
118(top 0.1%)
h-index
263
documents
57.0K
doc citations
2.7K
citing journals
100
times ranked

Publications

217 peer-reviewed articles • 43,041 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
Sort: Year | Citations
#ArticleIFCitationsLinks
1Assembly of tight junction belts by ZO1 surface condensation and local actin polymerization
Developmental Cell, 2025, 60, 1234-1250.e6
7.737Citations (PDF)
2A mechanism for MEX-5-driven disassembly of PGL-3/RNA condensates in vitro7.57Citations (PDF)
3Mesoscale properties of protein clusters determine the size and nature of liquid-liquid phase separation (LLPS)5.312Citations (PDF)
4SARS-CoV-2 nucleocapsid protein directly prevents cGAS–DNA recognition through competitive binding7.513Citations (PDF)
5Local and dynamic regulation of neuronal glycolysis in vivo7.535Citations (PDF)
6Solutes unmask differences in clustering versus phase separation of FET proteins13.728Citations (PDF)
7Actin polymerization counteracts prewetting of N-WASP on supported lipid bilayers7.513Citations (PDF)
8PICNIC accurately predicts condensate-forming proteins regardless of their structural disorder across organisms13.742Citations (PDF)
9CD-CODE: crowdsourcing condensate database and encyclopedia
Nature Methods, 2023, 20, 673-676
24.672Citations (PDF)
10Sequence-dependent surface condensation of a pioneer transcription factor on DNA
Nature Physics, 2022, 18, 271-276
16.0179Citations (PDF)
11Characterization of RNA content in individual phase-separated coacervate microdroplets13.730Citations (PDF)
12Biomolecular condensate phase diagrams with a combinatorial microdroplet platform13.7107Citations (PDF)
13Phosphofructokinase relocalizes into subcellular compartments with liquid-like properties in vivo
Biophysical Journal, 2021, 120, 1170-1186
2.268Citations (PDF)
14Reentrant liquid condensate phase of proteins is stabilized by hydrophobic and non-ionic interactions13.7529Citations (PDF)
15Feedback control of PLK1 by Apolo1 ensures accurate chromosome segregation
Cell Reports, 2021, 36, 109343
6.329Citations (PDF)
16Local thermodynamics govern formation and dissolution of Caenorhabditis elegans P granule condensates7.5139Citations (PDF)
17Biomolecular condensates at the nexus of cellular stress, protein aggregation disease and ageing78.01,216Citations (PDF)
18ESI mutagenesis: a one-step method for introducing mutations into bacterial artificial chromosomes
Life Science Alliance, 2021, 4, e202000836
2.62Citations (PDF)
19Generalized models for bond percolation transitions of associative polymers
Physical Review E, 2020, 102,
2.1130Citations (PDF)
20ASCB Keith Porter Lecture
Molecular Biology of the Cell, 2020, 31, 2864-2867
2.51Citations (PDF)
21Condensation of Ded1p Promotes a Translational Switch from Housekeeping to Stress Protein Production
Cell, 2020, 181, 818-831.e19
33.6236Citations (PDF)
22RNA-Induced Conformational Switching and Clustering of G3BP Drive Stress Granule Assembly by Condensation
Cell, 2020, 181, 346-361.e17
33.6913Citations (PDF)
23Drops and fibers — how biomolecular condensates and cytoskeletal filaments influence each other2.8109Citations (PDF)
24Kinetically distinct phases of tau on microtubules regulate kinesin motors and severing enzymes
Nature Cell Biology, 2019, 21, 1086-1092
16.3173Citations (PDF)
25FUS pathology in ALS is linked to alterations in multiple ALS-associated proteins and rescued by drugs stimulating autophagy
Acta Neuropathologica, 2019, 138, 67-84
9.1119Citations (PDF)
26Inhibition of CPAP –tubulin interaction prevents proliferation of centrosome‐amplified cancer cells
EMBO Journal, 2019, 38,
7.333Citations (PDF)
27Phosphatase PP2A and microtubule-mediated pulling forces disassemble centrosomes during mitotic exit
Biology Open, 2018, ,
1.246Citations (PDF)
28Controlling compartmentalization by non-membrane-bound organelles3.7160Citations (PDF)
29RNA buffers the phase separation behavior of prion-like RNA binding proteins
Science, 2018, 360, 918-921
36.21,171Citations (PDF)
30Isogenic FUS-eGFP iPSC Reporter Lines Enable Quantification of FUS Stress Granule Pathology that Is Rescued by Drugs Inducing Autophagy
Stem Cell Reports, 2018, 10, 375-389
4.4114Citations (PDF)
31Impaired DNA damage response signaling by FUS-NLS mutations leads to neurodegeneration and FUS aggregate formation13.7273Citations (PDF)
32Phase separation of a yeast prion protein promotes cellular fitness
Science, 2018, 359,
36.2733Citations (PDF)
33Protein Dynamics in Complex DNA Lesions
Molecular Cell, 2018, 69, 1046-1061.e5
13.3165Citations (PDF)
34Organization and Function of Non-dynamic Biomolecular Condensates6.7232Citations (PDF)
35Salt-Dependent Rheology and Surface Tension of Protein Condensates Using Optical Traps8.2187Citations (PDF)
36Positioning of Particles in Active Droplets8.228Citations (PDF)
37Phase Transitions Drive the Formation of Vesicular Stomatitis Virus Replication Compartments
MBio, 2018, 9,
4.4239Citations (PDF)
38A User’s Guide for Phase Separation Assays with Purified Proteins
Journal of Molecular Biology, 2018, 430, 4806-4820
4.1298Citations (PDF)
39A Molecular Grammar Governing the Driving Forces for Phase Separation of Prion-like RNA Binding Proteins
Cell, 2018, 174, 688-699.e16
33.62,199Citations (PDF)
40Different Material States of Pub1 Condensates Define Distinct Modes of Stress Adaptation and Recovery
Cell Reports, 2018, 23, 3327-3339
6.3249Citations (PDF)
41The replicative helicase MCM recruits cohesin acetyltransferase ESCO2 to mediate centromeric sister chromatid cohesion
EMBO Journal, 2018, 37,
7.370Citations (PDF)
42Biomolecular condensates: organizers of cellular biochemistry78.06,420Citations (PDF)
43Stem cells: the new “model organism”
Molecular Biology of the Cell, 2017, 28, 1409-1411
2.535Citations (PDF)
44The Centrosome Is a Selective Condensate that Nucleates Microtubules by Concentrating Tubulin
Cell, 2017, 169, 1066-1077.e10
33.6730Citations (PDF)
45An aberrant phase transition of stress granules triggered by misfolded protein and prevented by chaperone function
EMBO Journal, 2017, 36, 1669-1687
7.3496Citations (PDF)
46Genome-scale single-cell mechanical phenotyping reveals disease-related genes involved in mitotic rounding13.769Citations (PDF)
47TransgeneOmics – A transgenic platform for protein localization based function exploration
Methods, 2016, 96, 69-74
3.514Citations (PDF)
48Polo-like kinase phosphorylation determines Caenorhabditis elegans centrosome size and density by biasing SPD-5 toward an assembly-competent conformation
Biology Open, 2016, 5, 1431-1440
1.274Citations (PDF)
49In vitro Reconstitution of a Membrane Switch Mechanism for the Polarity Protein LGL
Journal of Molecular Biology, 2016, 428, 4828-4842
4.119Citations (PDF)
50Rheology of the Active Cell Cortex in Mitosis
Biophysical Journal, 2016, 111, 589-600
2.2152Citations (PDF)
51Amyloid-like Self-Assembly of a Cellular Compartment
Cell, 2016, 166, 637-650
33.6401Citations (PDF)
52Polar Positioning of Phase-Separated Liquid Compartments in Cells Regulated by an mRNA Competition Mechanism
Cell, 2016, 166, 1572-1584.e16
33.6355Citations (PDF)
53Are aberrant phase transitions a driver of cellular aging?
BioEssays, 2016, 38, 959-968
2.1277Citations (PDF)
54A locus inPristionchus pacificusthat is responsible for the ability to give rise to fertile offspring at higher temperatures
Biology Open, 2016, 5, 1111-1117
1.212Citations (PDF)
55The Mitotic Spindle in the One-Cell C . elegans Embryo Is Positioned with High Precision and Stability
Biophysical Journal, 2016, 111, 1773-1784
2.238Citations (PDF)
56Molecular basis for CPAP-tubulin interaction in controlling centriolar and ciliary length13.786Citations (PDF)
57PLEKHA7 Recruits PDZD11 to Adherens Junctions to Stabilize Nectins
Journal of Biological Chemistry, 2016, 291, 11016-11029
2.233Citations (PDF)
58Ki-67 acts as a biological surfactant to disperse mitotic chromosomes
Nature, 2016, 535, 308-312
37.9549Citations (PDF)
59Site-Specific Cryo-focused Ion Beam Sample Preparation Guided by 3D Correlative Microscopy
Biophysical Journal, 2016, 110, 860-869
2.2240Citations (PDF)
60Growth and division of active droplets provides a model for protocells
Nature Physics, 2016, 13, 408-413
16.0446Citations (PDF)
61Suppression of Ostwald ripening in active emulsions
Physical Review E, 2015, 92,
2.1231Citations (PDF)
62Mitotic cells contract actomyosin cortex and generate pressure to round against or escape epithelial confinement13.798Citations (PDF)
63Cdk1-dependent mitotic enrichment of cortical myosin II promotes cell rounding against confinement
Nature Cell Biology, 2015, 17, 148-159
16.3148Citations (PDF)
64Emergent Properties of the Metaphase Spindle7.245Citations (PDF)
65Sestrin 2 Protein Regulates Platelet-derived Growth Factor Receptor β (Pdgfrβ) Expression by Modulating Proteasomal and Nrf2 Transcription Factor Functions
Journal of Biological Chemistry, 2015, 290, 9738-9752
2.226Citations (PDF)
66Regulated assembly of a supramolecular centrosome scaffold in vitro
Science, 2015, 348, 808-812
36.2210Citations (PDF)
67A Human Interactome in Three Quantitative Dimensions Organized by Stoichiometries and Abundances
Cell, 2015, 163, 712-723
33.61,367Citations (PDF)
68A 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
2.3168Citations (PDF)
69A Liquid-to-Solid Phase Transition of the ALS Protein FUS Accelerated by Disease Mutation
Cell, 2015, 162, 1066-1077
33.63,139Citations (PDF)
70Quantitative comparison of a human cancer cell surface proteome between interphase and mitosis
EMBO Journal, 2015, 34, 251-265
7.349Citations (PDF)
71Coiled-Coil Proteins Facilitated the Functional Expansion of the Centrosome
PLoS Computational Biology, 2014, 10, e1003657
3.143Citations (PDF)
72Products of the Parkinson's disease-related glyoxalase DJ-1, D-lactate and glycolate, support mitochondrial membrane potential and neuronal survival
Biology Open, 2014, 3, 777-784
1.257Citations (PDF)
73Pericentriolar material structure and dynamics3.7302Citations (PDF)
74Conserved TCP domain of Sas-4/CPAP is essential for pericentriolar material tethering during centrosome biogenesis7.578Citations (PDF)
75Encouraging innovation2.51Citations (PDF)
76Timing and mechanism of the initial cue establishing handed left–right asymmetry in Caenorhabditis elegans embryos
Genesis, 2014, 52, 572-580
1.250Citations (PDF)
77Centrosomes are autocatalytic droplets of pericentriolar material organized by centrioles7.5226Citations (PDF)
78Liquid-Liquid Phase Separation in Biology9.63,207Citations (PDF)
79TheCaenorhabditiseleganspericentriolar material components SPD-2 and SPD-5 are monomeric in the cytoplasm before incorporation into the PCM matrix
Molecular Biology of the Cell, 2014, 25, 2984-2992
2.531Citations (PDF)
80Quantification of surface tension and internal pressure generated by single mitotic cells3.4199Citations (PDF)
81XMAP215 activity sets spindle length by controlling the total mass of spindle microtubules
Nature Cell Biology, 2013, 15, 1116-1122
16.3133Citations (PDF)
82A genomic toolkit to investigate kinesin and myosin motor function in cells
Nature Cell Biology, 2013, 15, 325-334
16.3113Citations (PDF)
83A Systematic Mammalian Genetic Interaction Map Reveals Pathways Underlying Ricin Susceptibility
Cell, 2013, 152, 909-922
33.6366Citations (PDF)
84Principles of PAR polarity in Caenorhabditis elegans embryos78.097Citations (PDF)
85Synergy between XMAP215 and EB1 increases microtubule growth rates to physiological levels
Nature Cell Biology, 2013, 15, 688-693
16.3168Citations (PDF)
86Spatial Organization of the Cell Cytoplasm by Position-Dependent Phase Separation8.2146Citations (PDF)
87Stoichiometry of chromatin-associated protein complexes revealed by label-free quantitative mass spectrometry-based proteomics
Nucleic Acids Research, 2013, 41, e28-e28
15.5256Citations (PDF)
88C11ORF24 Is a Novel Type I Membrane Protein That Cycles between the Golgi Apparatus and the Plasma Membrane in Rab6-Positive Vesicles
PLoS ONE, 2013, 8, e82223
2.36Citations (PDF)
89BICD2, dynactin, and LIS1 cooperate in regulating dynein recruitment to cellular structures
Molecular Biology of the Cell, 2012, 23, 4226-4241
2.5281Citations (PDF)
90One-step purification of assembly-competent tubulin from diverse eukaryotic sources
Molecular Biology of the Cell, 2012, 23, 4393-4401
2.5149Citations (PDF)
91APC15 mediates CDC20 autoubiquitylation by APC/CMCC and disassembly of the mitotic checkpoint complex8.8142Citations (PDF)
92A Genome-Scale Resource for In Vivo Tag-Based Protein Function Exploration in C. elegans
Cell, 2012, 150, 855-866
33.6281Citations (PDF)
93Automated tracing of microtubules in electron tomograms of plastic embedded samples of Caenorhabditis elegans embryos
Journal of Structural Biology, 2012, 178, 129-138
2.3116Citations (PDF)
94Functional Repurposing Revealed by Comparing S. pombe and S. cerevisiae Genetic Interactions
Cell, 2012, 149, 1339-1352
33.6179Citations (PDF)
95GTSE1 Is a Microtubule Plus-End Tracking Protein That Regulates EB1-Dependent Cell Migration
PLoS ONE, 2012, 7, e51259
2.362Citations (PDF)
96Organelle Growth Control through Limiting Pools of Cytoplasmic Components
Current Biology, 2012, 22, R330-R339
3.6224Citations (PDF)
97Diverse transcription factor binding features revealed by genome-wide ChIP-seq in C. elegans
Genome Research, 2011, 21, 245-254
4.6256Citations (PDF)
98A High-Resolution C. elegans Essential Gene Network Based on Phenotypic Profiling of a Complex Tissue
Cell, 2011, 145, 470-482
33.6220Citations (PDF)
99Novel asymmetrically localizing components of human centrosomes identified by complementary proteomics methods
EMBO Journal, 2011, 30, 1520-1535
7.3312Citations (PDF)
100Hydrostatic pressure and the actomyosin cortex drive mitotic cell rounding
Nature, 2011, 469, 226-230
37.9664Citations (PDF)
101Force probing cell shape changes to molecular resolution6.729Citations (PDF)
102Limiting Amounts of Centrosome Material Set Centrosome Size in C. elegans Embryos
Current Biology, 2011, 21, 1259-1267
3.6245Citations (PDF)
103Extracellular Vesicles: Budding Regulated by a Phosphatidylethanolamine Translocase
Current Biology, 2011, 21, R988-R990
3.615Citations (PDF)
104Atomic Force Microscopy to Study Mechanics of Living Mitotic Mammalian Cells1.91Citations (PDF)
105Proliferating versus differentiating stem and cancer cells exhibit distinct midbody-release behaviour13.7155Citations (PDF)
106Systematic Phosphorylation Analysis of Human Mitotic Protein Complexes5.4101Citations (PDF)
107PAR proteins diffuse freely across the anterior–posterior boundary in polarized C. elegans embryos
Journal of Cell Biology, 2011, 193, 583-594
5.4122Citations (PDF)
108Active liquid-like behavior of nucleoli determines their size and shape in Xenopus laevis oocytes7.51,323Citations (PDF)
109XMAP215 polymerase activity is built by combining multiple tubulin-binding TOG domains and a basic lattice-binding region7.5164Citations (PDF)
110High-efficiency counterselection recombineering for site-directed mutagenesis in bacterial artificial chromosomes
Nature Methods, 2011, 9, 103-109
24.655Citations (PDF)
111Phenotypic profiling of the human genome by time-lapse microscopy reveals cell division genes
Nature, 2010, 464, 721-727
37.9833Citations (PDF)
112Live-cell imaging RNAi screen identifies PP2A–B55α and importin-β1 as key mitotic exit regulators in human cells
Nature Cell Biology, 2010, 12, 886-893
16.3332Citations (PDF)
113Cortical domain correction repositions the polarity boundary to match the cytokinesis furrow in C. elegans embryos
Development (Cambridge), 2010, 137, 1743-1753
3.151Citations (PDF)
114Genome-Wide Identification of Binding Sites Defines Distinct Functions for Caenorhabditis elegans PHA-4/FOXA in Development and Environmental Response
PLoS Genetics, 2010, 6, e1000848
3.2174Citations (PDF)
115Automated tracking and analysis of centrosomes in early Caenorhabditis elegans embryos
Bioinformatics, 2010, 26, i13-i20
4.727Citations (PDF)
116FRAP Analysis of Membrane-Associated Proteins: Lateral Diffusion and Membrane-Cytoplasmic Exchange
Biophysical Journal, 2010, 99, 2443-2452
2.273Citations (PDF)
117Quantitative Interaction Proteomics and Genome-wide Profiling of Epigenetic Histone Marks and Their Readers
Cell, 2010, 142, 967-980
33.6778Citations (PDF)
118Sororin Mediates Sister Chromatid Cohesion by Antagonizing Wapl
Cell, 2010, 143, 737-749
33.6385Citations (PDF)
119Systematic Analysis of Human Protein Complexes Identifies Chromosome Segregation Proteins
Science, 2010, 328, 593-599
36.2500Citations (PDF)
120Membrane Invaginations Reveal Cortical Sites that Pull on Mitotic Spindles in One-Cell C. elegans Embryos
PLoS ONE, 2010, 5, e12301
2.3106Citations (PDF)
121HAUS, the 8-Subunit Human Augmin Complex, Regulates Centrosome and Spindle Integrity
Current Biology, 2009, 19, 816-826
3.6273Citations (PDF)
122Comparative profiling identifies C13orf3 as a component of the Ska complex required for mammalian cell division
EMBO Journal, 2009, 28, 1453-1465
7.395Citations (PDF)
123Growth, fluctuation and switching at microtubule plus ends78.0164Citations (PDF)
124EB1 Recognizes the Nucleotide State of Tubulin in the Microtubule Lattice
PLoS ONE, 2009, 4, e7585
2.3153Citations (PDF)
125BAC TransgeneOmics: a high-throughput method for exploration of protein function in mammals
Nature Methods, 2008, 5, 409-415
24.6610Citations (PDF)
126Characterization of Protein Dynamics in Asymmetric Cell Division by Scanning Fluorescence Correlation Spectroscopy
Biophysical Journal, 2008, 95, 5476-5486
2.255Citations (PDF)
127Efficient chaperone-mediated tubulin biogenesis is essential for cell division and cell migration in C. elegans
Developmental Biology, 2008, 313, 320-334
1.969Citations (PDF)
128XMAP215 Is a Processive Microtubule Polymerase
Cell, 2008, 132, 79-88
33.6534Citations (PDF)
129A Protein Domain-Based Interactome Network for C. elegans Early Embryogenesis
Cell, 2008, 134, 534-545
33.6207Citations (PDF)
130Cell cycle progression requires the CDC-48 UFD−1/NPL−4 complex for efficient DNA replication7.579Citations (PDF)
131Building a spindle of the correct length in human cells requires the interaction between TPX2 and Aurora A
Journal of Cell Biology, 2008, 182, 289-300
5.4200Citations (PDF)
132Acto-myosin reorganization and PAR polarity in C. elegans
Development (Cambridge), 2007, 134, 1035-1043
3.1110Citations (PDF)
133Functional Interaction between Phosducin-like Protein 2 and Cytosolic Chaperonin Is Essential for Cytoskeletal Protein Function and Cell Cycle Progression
Molecular Biology of the Cell, 2007, 18, 2336-2345
2.555Citations (PDF)
134The Rho GTPase-activating proteins RGA-3 and RGA-4 are required to set the initial size of PAR domains in Caenorhabditis elegans one-cell embryos7.5120Citations (PDF)
135The C. elegans RSA Complex Localizes Protein Phosphatase 2A to Centrosomes and Regulates Mitotic Spindle Assembly
Cell, 2007, 128, 115-127
33.695Citations (PDF)
136Stress Generation and Filament Turnover during Actin Ring Constriction
PLoS ONE, 2007, 2, e696
2.3107Citations (PDF)
137Genome-scale RNAi profiling of cell division in human tissue culture cells
Nature Cell Biology, 2007, 9, 1401-1412
16.3280Citations (PDF)
138Microtubule polymerases and depolymerases3.9285Citations (PDF)
139Crystal Structure of a TOG Domain: Conserved Features of XMAP215/Dis1-Family TOG Domains and Implications for Tubulin Binding
Structure, 2007, 15, 355-362
3.8127Citations (PDF)
140Yeast kinesin-8 depolymerizes microtubules in a length-dependent manner
Nature Cell Biology, 2006, 8, 957-962
16.3460Citations (PDF)
141Cyclin E–Cdk2 temporally regulates centrosome assembly and establishment of polarity in Caenorhabditis elegans embryos
Nature Cell Biology, 2006, 8, 1441-1447
16.363Citations (PDF)
142Centriole assembly in Caenorhabditis elegans
Nature, 2006, 444, 619-623
37.9395Citations (PDF)
143Global and local control of microtubule destabilization promoted by a catastrophe kinesin MCAK/XKCM11.420Citations (PDF)
144Spindle Oscillations during Asymmetric Cell Division Require a Threshold Number of Active Cortical Force Generators
Current Biology, 2006, 16, 2111-2122
3.6188Citations (PDF)
145CDC-42 and RHO-1 coordinate acto-myosin contractility and PAR protein localization during polarity establishment in C. elegansembryos
Development (Cambridge), 2006, 133, 3507-3516
3.1138Citations (PDF)
146Boveri revisited
EMBO Journal, 2005, 24, 1104-1110
7.33Citations (PDF)
147The conserved protein DCN-1/Dcn1p is required for cullin neddylation in C. elegans and S. cerevisiae
Nature, 2005, 435, 1257-1261
37.9170Citations (PDF)
148A cytokinesis furrow is positioned by two consecutive signals
Nature, 2005, 436, 731-734
37.9213Citations (PDF)
149Predictive models of molecular machines involved in Caenorhabditis elegans early embryogenesis
Nature, 2005, 436, 861-865
37.9262Citations (PDF)
150Aurora A phosphorylation of TACC3/maskin is required for centrosome-dependent microtubule assembly in mitosis
Journal of Cell Biology, 2005, 170, 1047-1055
5.4263Citations (PDF)
151Aurora A activates D-TACC–Msps complexes exclusively at centrosomes to stabilize centrosomal microtubules
Journal of Cell Biology, 2005, 170, 1039-1046
5.4156Citations (PDF)
152A comparison of the ability of XMAP215 and tau to inhibit the microtubule destabilizing activity of XKCM13.717Citations (PDF)
153RNA interference rescue by bacterial artificial chromosome transgenesis in mammalian tissue culture cells7.588Citations (PDF)
154Role of mitochondria in the pheromone- and amiodarone-induced programmed death of yeast
Journal of Cell Biology, 2005, 168, 257-269
5.4254Citations (PDF)
155An Essential Function of the C. elegans Ortholog of TPX2 Is to Localize Activated Aurora A Kinase to Mitotic Spindles
Developmental Cell, 2005, 9, 237-248
7.7122Citations (PDF)
156Identification and Characterization of Factors Required for Microtubule Growth and Nucleation in the Early C. elegans Embryo
Developmental Cell, 2005, 9, 223-236
7.7236Citations (PDF)
157Centrosomes direct cell polarity independently of microtubule assembly in C. elegans embryos
Nature, 2004, 431, 92-96
37.9218Citations (PDF)
158The Caenorhabditis elegans Centrosomal Protein SPD-2 Is Required for both Pericentriolar Material Recruitment and Centriole Duplication
Current Biology, 2004, 14, 863-873
3.6249Citations (PDF)
159ASYMMETRIC CELL DIVISION IN C. ELEGANS: Cortical Polarity and Spindle Positioning9.6221Citations (PDF)
160Analysis of the distribution of the kinetochore protein Ndc10p in Saccharomyces cerevisiae using 3-D modeling of mitotic spindles
Chromosoma, 2003, 111, 417-428
2.029Citations (PDF)
161Dynamics and mechanics of the microtubule plus end
Nature, 2003, 422, 753-758
37.9711Citations (PDF)
162The mbk‐2 kinase is required for inactivation of MEI‐1/katanin in the one‐cell Caenorhabditis elegans embryo
EMBO Reports, 2003, 4, 1175-1181
5.271Citations (PDF)
163SAS-4 Is a C. elegans Centriolar Protein that Controls Centrosome Size
Cell, 2003, 112, 575-587
33.6314Citations (PDF)
164The kinetically dominant assembly pathway for centrosomal asters in Caenorhabditis elegans is γ-tubulin dependent
Journal of Cell Biology, 2002, 157, 591-602
5.4231Citations (PDF)
165GTP Binding Induces Filament Assembly of a Recombinant Septin
Current Biology, 2002, 12, 1858-1863
3.694Citations (PDF)
166XMAP215: a key component of the dynamic microtubule cytoskeleton
Trends in Cell Biology, 2002, 12, 267-273
12.0134Citations (PDF)
167A ubiquitin C-terminal hydrolase is required to maintain osmotic balance and execute actin-dependent processes in the earlyC. elegansembryo
Journal of Cell Science, 2002, 115, 2293-2302
2.424Citations (PDF)
168zyg-8, a Gene Required for Spindle Positioning in C. elegans, Encodes a Doublecortin-Related Kinase that Promotes Microtubule Assembly
Developmental Cell, 2001, 1, 363-375
7.7102Citations (PDF)
169XMAP215 regulates microtubule dynamics through two distinct domains
EMBO Journal, 2001, 20, 397-410
7.377Citations (PDF)
170The spindle: a dynamic assembly of microtubules and motors
Nature Cell Biology, 2001, 3, E28-E34
16.3464Citations (PDF)
171Polarity controls forces governing asymmetric spindle positioning in the Caenorhabditis elegans embryo
Nature, 2001, 409, 630-633
37.9516Citations (PDF)
172Binding of the adenomatous polyposis coli protein to microtubules increases microtubule stability and is regulated by GSK3β phosphorylation
Current Biology, 2001, 11, 44-49
3.6431Citations (PDF)
173Functional Analysis of Kinetochore Assembly in Caenorhabditis elegans
Journal of Cell Biology, 2001, 153, 1209-1226
5.4443Citations (PDF)
174Functional genomic analysis of cell division in C. elegans using RNAi of genes on chromosome III
Nature, 2000, 408, 331-336
37.9872Citations (PDF)
175Centrosomes: Sic transit gloria centri
Current Biology, 2000, 10, R276-R278
3.615Citations (PDF)
176Cyk-4
Journal of Cell Biology, 2000, 149, 1391-1404
5.4372Citations (PDF)
177OOC-3, a novel putative transmembrane protein required for establishment of cortical domains and spindle orientation in the P1 blastomere of C. elegans embryos
Development (Cambridge), 2000, 127, 2063-2073
3.133Citations (PDF)
178Cytoplasmic Dynein Is Required for Distinct Aspects of Mtoc Positioning, Including Centrosome Separation, in the One Cell Stage Caenorhabditis elegans Embryo
Journal of Cell Biology, 1999, 147, 135-150
5.4438Citations (PDF)
179Rab5 regulates motility of early endosomes on microtubules
Nature Cell Biology, 1999, 1, 376-382
16.3456Citations (PDF)
180Control of microtubule dynamics by the antagonistic activities of XMAP215 and XKCM1 in Xenopus egg extracts
Nature Cell Biology, 1999, 2, 13-19
16.3408Citations (PDF)
181The conserved protein kinase Ipl1 regulates microtubule binding to kinetochores in budding yeast
Genes and Development, 1999, 13, 532-544
4.6393Citations (PDF)
182Regulation of Saccharomyces cerevisiae kinetochores by the type 1 phosphatase Glc7p
Genes and Development, 1999, 13, 545-555
4.6135Citations (PDF)
183Structural changes at microtubule ends accompanying GTP hydrolysis: Information from a slowly hydrolyzable analogue of GTP, guanylyl ( , )methylenediphosphonate7.5229Citations (PDF)
184A role for microtubule dynamics in phagosome movement
Journal of Cell Science, 1998, 111, 303-312
2.480Citations (PDF)
185Molecular Requirements for Bi-directional Movement of Phagosomes Along Microtubules
Journal of Cell Biology, 1997, 137, 113-129
5.4220Citations (PDF)
186CDK1 Inactivation Regulates Anaphase Spindle Dynamics and Cytokinesis In Vivo
Journal of Cell Biology, 1997, 138, 385-393
5.4173Citations (PDF)
187Coupling cell division and cell death to microtubule dynamics3.9209Citations (PDF)
188Microtubule structure and dynamics3.999Citations (PDF)
189Regulating the Yeast Kinetochore by Ubiquitin-Dependent Degradation and Skp1p-Mediated Phosphorylation
Cell, 1997, 91, 491-500
33.6145Citations (PDF)
190Motor proteins of the eukaryotic cytoskeleton7.542Citations (PDF)
191Mitotic chromatin regulates phosphorylation of Stathmin/Op18
Nature, 1997, 389, 640-643
37.9123Citations (PDF)
192Kinetochores distinguish GTP from GDP forms of the microtubule lattice
Nature, 1997, 388, 888-891
37.947Citations (PDF)
193A requirement for Rho and Cdc42 during cytokinesis in Xenopus embryos
Current Biology, 1997, 7, 12-23
3.6243Citations (PDF)
194Distinct roles of PP1 and PP2A-like phosphatases in control of microtubule dynamics during mitosis
EMBO Journal, 1997, 16, 5537-5549
7.3173Citations (PDF)
195Morphogenetic Properties of Microtubules and Mitotic Spindle Assembly
Cell, 1996, 84, 401-410
33.6286Citations (PDF)
196Cortical domains and the mechanisms of asymmetric cell division
Trends in Cell Biology, 1996, 6, 382-387
12.049Citations (PDF)
197Microtubule-associated Protein-dependent Binding of Phagosomes to Microtubules
Journal of Biological Chemistry, 1996, 271, 3803-3811
2.275Citations (PDF)
198Two genes required for the binding of an essential Saccharomyces cerevisiae kinetochore complex to DNA.7.554Citations (PDF)
199Microtubule Dynamics: Kinetochores get a grip
Current Biology, 1995, 5, 483-484
3.69Citations (PDF)
200Cell Polarity: The importance of being polar
Current Biology, 1995, 5, 1102-1105
3.629Citations (PDF)
201Structure and Function of Kinetochores in Budding Yeast9.694Citations (PDF)
202Cell Fate Determination: When is a determinant a determinant?
Current Biology, 1994, 4, 420-422
3.66Citations (PDF)
203Identification of essential components of the S. cerevisiae kinetochore
Cell, 1993, 73, 761-774
33.6218Citations (PDF)
204Role of GTP hydrolysis in microtubule dynamics: information from a slowly hydrolyzable analogue, GMPCPP.
Molecular Biology of the Cell, 1992, 3, 1155-1167
2.5384Citations (PDF)
205Modulation of the dynamic instability of tubulin assembly by the microtubule-associated protein tau.
Molecular Biology of the Cell, 1992, 3, 1141-1154
2.5954Citations (PDF)
206Microtubule-motor activity of a yeast centromere-binding protein complex
Nature, 1992, 359, 533-536
37.9117Citations (PDF)
207Spindle positioning and cell polarity
Current Biology, 1992, 2, 469-471
3.617Citations (PDF)
208Two different microtubule-based motor activities with opposite polarities in kinetochores
Nature, 1991, 351, 206-211
37.9208Citations (PDF)
209Regulation of the Direction of Chromosome Movement1.616Citations (PDF)
210Real-time visualization of cell cycle-dependent changes in microtubule dynamics in cytoplasmic extracts
Cell, 1990, 62, 579-589
33.6451Citations (PDF)
211Rab5 and Alsin regulate stress-activated cytoprotective signaling on mitochondria
ELife, 0, 7,
0.786Citations (PDF)
212HspB8 prevents aberrant phase transitions of FUS by chaperoning its folded RNA-binding domain
ELife, 0, 10,
0.7102Citations (PDF)
213Priority of discovery in the life sciences
ELife, 0, 5,
0.736Citations (PDF)
214Quantitative theory for the diffusive dynamics of liquid condensates
ELife, 0, 10,
0.769Citations (PDF)
215A label-free method for measuring the composition of multicomponent biomolecular condensates
Nature Chemistry, 0, 17, 1891-1902
18.727Citations (PDF)
216Origins of the Intrinsic Redox Activity of Biomolecular Condensates15.03Citations (PDF)
217Biomolecular condensates mediate C–N bond formation
Nature Chemical Biology, 0, 22, 1165-1175
11.85Citations (PDF)