| 1 | Local and dynamic regulation of neuronal glycolysis in vivo | 7.5 | 35 | Citations (PDF) |
| 2 | Solutes unmask differences in clustering versus phase separation of FET proteins | 13.7 | 26 | Citations (PDF) |
| 3 | CD-CODE: crowdsourcing condensate database and encyclopedia | 24.6 | 69 | Citations (PDF) |
| 4 | Sequence-dependent surface condensation of a pioneer transcription factor on DNA | 16.0 | 173 | Citations (PDF) |
| 5 | Characterization of RNA content in individual phase-separated coacervate microdroplets | 13.7 | 30 | Citations (PDF) |
| 6 | Biomolecular condensate phase diagrams with a combinatorial microdroplet platform | 13.7 | 100 | Citations (PDF) |
| 7 | Phosphofructokinase relocalizes into subcellular compartments with liquid-like properties in vivo | 2.2 | 67 | Citations (PDF) |
| 8 | Reentrant liquid condensate phase of proteins is stabilized by hydrophobic and non-ionic interactions | 13.7 | 520 | Citations (PDF) |
| 9 | Feedback control of PLK1 by Apolo1 ensures accurate chromosome segregation | 6.3 | 29 | Citations (PDF) |
| 10 | Local thermodynamics govern formation and dissolution of
Caenorhabditis
elegans P granule condensates | 7.5 | 135 | Citations (PDF) |
| 11 | Biomolecular condensates at the nexus of cellular stress, protein aggregation disease and ageing | 78.1 | 1,178 | Citations (PDF) |
| 12 | ESI mutagenesis: a one-step method for introducing mutations into bacterial artificial chromosomes | 2.6 | 2 | Citations (PDF) |
| 13 | ASCB Keith Porter Lecture | 2.5 | 1 | Citations (PDF) |
| 14 | Condensation of Ded1p Promotes a Translational Switch from Housekeeping to Stress Protein ProductionCell, 2020, 181, 818-831.e19 | 33.6 | 232 | Citations (PDF) |
| 15 | RNA-Induced Conformational Switching and Clustering of G3BP Drive Stress Granule Assembly by CondensationCell, 2020, 181, 346-361.e17 | 33.6 | 893 | Citations (PDF) |
| 16 | Drops and fibers — how biomolecular condensates and cytoskeletal filaments influence each other | 2.8 | 107 | Citations (PDF) |
| 17 | Kinetically distinct phases of tau on microtubules regulate kinesin motors and severing enzymes | 16.3 | 169 | Citations (PDF) |
| 18 | FUS pathology in ALS is linked to alterations in multiple ALS-associated proteins and rescued by drugs stimulating autophagy | 9.1 | 119 | Citations (PDF) |
| 19 | Inhibition of
CPAP
–tubulin interaction prevents proliferation of centrosome‐amplified cancer cells | 7.3 | 33 | Citations (PDF) |
| 20 | Phosphatase PP2A and microtubule-mediated pulling forces disassemble centrosomes during mitotic exit | 1.2 | 45 | Citations (PDF) |
| 21 | Controlling compartmentalization by non-membrane-bound organelles | 3.7 | 158 | Citations (PDF) |
| 22 | RNA buffers the phase separation behavior of prion-like RNA binding proteins | 36.3 | 1,146 | Citations (PDF) |
| 23 | Isogenic FUS-eGFP iPSC Reporter Lines Enable Quantification of FUS Stress Granule Pathology that Is Rescued by Drugs Inducing Autophagy | 4.4 | 112 | Citations (PDF) |
| 24 | Impaired DNA damage response signaling by FUS-NLS mutations leads to neurodegeneration and FUS aggregate formation | 13.7 | 271 | Citations (PDF) |
| 25 | Phase separation of a yeast prion protein promotes cellular fitness | 36.3 | 723 | Citations (PDF) |
| 26 | Protein Dynamics in Complex DNA Lesions | 13.3 | 165 | Citations (PDF) |
| 27 | Organization and Function of Non-dynamic Biomolecular Condensates | 6.7 | 232 | Citations (PDF) |
| 28 | Salt-Dependent Rheology and Surface Tension of Protein Condensates Using Optical Traps | 8.2 | 182 | Citations (PDF) |
| 29 | Positioning of Particles in Active Droplets | 8.2 | 28 | Citations (PDF) |
| 30 | Phase Transitions Drive the Formation of Vesicular Stomatitis Virus Replication Compartments | 4.4 | 235 | Citations (PDF) |
| 31 | A User’s Guide for Phase Separation Assays with Purified Proteins | 4.1 | 292 | Citations (PDF) |
| 32 | A Molecular Grammar Governing the Driving Forces for Phase Separation of Prion-like RNA Binding ProteinsCell, 2018, 174, 688-699.e16 | 33.6 | 2,163 | Citations (PDF) |
| 33 | Different Material States of Pub1 Condensates Define Distinct Modes of Stress Adaptation and Recovery | 6.3 | 246 | Citations (PDF) |
| 34 | The replicative helicase MCM recruits cohesin acetyltransferase ESCO2 to mediate centromeric sister chromatid cohesion | 7.3 | 70 | Citations (PDF) |
| 35 | Biomolecular condensates: organizers of cellular biochemistry | 78.1 | 6,245 | Citations (PDF) |
| 36 | Stem cells: the new “model organism” | 2.5 | 35 | Citations (PDF) |
| 37 | The Centrosome Is a Selective Condensate that Nucleates Microtubules by Concentrating TubulinCell, 2017, 169, 1066-1077.e10 | 33.6 | 720 | Citations (PDF) |
| 38 | An aberrant phase transition of stress granules triggered by misfolded protein and prevented by chaperone function | 7.3 | 486 | Citations (PDF) |
| 39 | Genome-scale single-cell mechanical phenotyping reveals disease-related genes involved in mitotic rounding | 13.7 | 68 | Citations (PDF) |
| 40 | TransgeneOmics – A transgenic platform for protein localization based function exploration | 3.5 | 14 | Citations (PDF) |
| 41 | Polo-like kinase phosphorylation determines
Caenorhabditis
elegans
centrosome size and density by biasing SPD-5 toward an assembly-competent conformation | 1.2 | 72 | Citations (PDF) |
| 42 | In vitro Reconstitution of a Membrane Switch Mechanism for the Polarity Protein LGL | 4.1 | 19 | Citations (PDF) |
| 43 | Rheology of the Active Cell Cortex in Mitosis | 2.2 | 151 | Citations (PDF) |
| 44 | Amyloid-like Self-Assembly of a Cellular Compartment | 33.6 | 397 | Citations (PDF) |
| 45 | Polar Positioning of Phase-Separated Liquid Compartments in Cells Regulated by an mRNA Competition MechanismCell, 2016, 166, 1572-1584.e16 | 33.6 | 351 | Citations (PDF) |
| 46 | Are aberrant phase transitions a driver of cellular aging? | 2.1 | 273 | Citations (PDF) |
| 47 | A locus inPristionchus pacificusthat is responsible for the ability to give rise to fertile offspring at higher temperatures | 1.2 | 11 | Citations (PDF) |
| 48 | The Mitotic Spindle in the One-Cell C . elegans Embryo Is Positioned with High Precision and Stability | 2.2 | 37 | Citations (PDF) |
| 49 | Molecular basis for CPAP-tubulin interaction in controlling centriolar and ciliary length | 13.7 | 86 | Citations (PDF) |
| 50 | PLEKHA7 Recruits PDZD11 to Adherens Junctions to Stabilize Nectins | 2.2 | 33 | Citations (PDF) |
| 51 | Ki-67 acts as a biological surfactant to disperse mitotic chromosomes | 37.9 | 544 | Citations (PDF) |
| 52 | Site-Specific Cryo-focused Ion Beam Sample Preparation Guided by 3D Correlative Microscopy | 2.2 | 235 | Citations (PDF) |
| 53 | Growth and division of active droplets provides a model for protocells | 16.0 | 437 | Citations (PDF) |
| 54 | Suppression of Ostwald ripening in active emulsions | 2.1 | 228 | Citations (PDF) |
| 55 | Mitotic cells contract actomyosin cortex and generate pressure to round against or escape epithelial confinement | 13.7 | 96 | Citations (PDF) |
| 56 | Cdk1-dependent mitotic enrichment of cortical myosin II promotes cell rounding against confinement | 16.3 | 148 | Citations (PDF) |
| 57 | Emergent Properties of the Metaphase Spindle | 7.2 | 45 | Citations (PDF) |
| 58 | Sestrin 2 Protein Regulates Platelet-derived Growth Factor Receptor β (Pdgfrβ) Expression by Modulating Proteasomal and Nrf2 Transcription Factor Functions | 2.2 | 26 | Citations (PDF) |
| 59 | Regulated assembly of a supramolecular centrosome scaffold in vitro | 36.3 | 207 | Citations (PDF) |
| 60 | A Human Interactome in Three Quantitative Dimensions Organized by Stoichiometries and Abundances | 33.6 | 1,348 | Citations (PDF) |
| 61 | A focused ion beam milling and lift-out approach for site-specific preparation of frozen-hydrated lamellas from multicellular organisms | 2.3 | 166 | Citations (PDF) |
| 62 | A Liquid-to-Solid Phase Transition of the ALS Protein FUS Accelerated by Disease MutationCell, 2015, 162, 1066-1077 | 33.6 | 3,083 | Citations (PDF) |
| 63 | Quantitative comparison of a human cancer cell surface proteome between interphase and mitosis | 7.3 | 49 | Citations (PDF) |
| 64 | Coiled-Coil Proteins Facilitated the Functional Expansion of the Centrosome | 3.1 | 43 | Citations (PDF) |
| 65 | Products of the Parkinson's disease-related glyoxalase DJ-1, D-lactate and glycolate, support mitochondrial membrane potential and neuronal survival | 1.2 | 57 | Citations (PDF) |
| 66 | Pericentriolar material structure and dynamics | 3.7 | 298 | Citations (PDF) |
| 67 | Conserved TCP domain of Sas-4/CPAP is essential for pericentriolar material tethering during centrosome biogenesis | 7.5 | 78 | Citations (PDF) |
| 68 | Encouraging innovation | 2.5 | 1 | Citations (PDF) |
| 69 | Timing and mechanism of the initial cue establishing handed left–right asymmetry in Caenorhabditis elegans embryos | 1.2 | 50 | Citations (PDF) |
| 70 | Centrosomes are autocatalytic droplets of pericentriolar material organized by centrioles | 7.5 | 225 | Citations (PDF) |
| 71 | Liquid-Liquid Phase Separation in Biology | 9.6 | 3,147 | Citations (PDF) |
| 72 | TheCaenorhabditiseleganspericentriolar material components SPD-2 and SPD-5 are monomeric in the cytoplasm before incorporation into the PCM matrix | 2.5 | 31 | Citations (PDF) |
| 73 | Quantification of surface tension and internal pressure generated by single mitotic cells | 3.4 | 196 | Citations (PDF) |
| 74 | XMAP215 activity sets spindle length by controlling the total mass of spindle microtubules | 16.3 | 132 | Citations (PDF) |
| 75 | A genomic toolkit to investigate kinesin and myosin motor function in cells | 16.3 | 113 | Citations (PDF) |
| 76 | A Systematic Mammalian Genetic Interaction Map Reveals Pathways Underlying Ricin Susceptibility | 33.6 | 365 | Citations (PDF) |
| 77 | Principles of PAR polarity in Caenorhabditis elegans embryos | 78.1 | 97 | Citations (PDF) |
| 78 | Synergy between XMAP215 and EB1 increases microtubule growth rates to physiological levels | 16.3 | 167 | Citations (PDF) |
| 79 | Spatial Organization of the Cell Cytoplasm by Position-Dependent Phase Separation | 8.2 | 145 | Citations (PDF) |
| 80 | Stoichiometry of chromatin-associated protein complexes revealed by label-free quantitative mass spectrometry-based proteomics | 15.5 | 254 | Citations (PDF) |
| 81 | C11ORF24 Is a Novel Type I Membrane Protein That Cycles between the Golgi Apparatus and the Plasma Membrane in Rab6-Positive Vesicles | 2.3 | 5 | Citations (PDF) |
| 82 | BICD2, dynactin, and LIS1 cooperate in regulating dynein recruitment to cellular structures | 2.5 | 280 | Citations (PDF) |
| 83 | One-step purification of assembly-competent tubulin from diverse eukaryotic sources | 2.5 | 147 | Citations (PDF) |
| 84 | APC15 mediates CDC20 autoubiquitylation by APC/CMCC and disassembly of the mitotic checkpoint complex | 8.8 | 142 | Citations (PDF) |
| 85 | A Genome-Scale Resource for In Vivo Tag-Based Protein Function Exploration in C. elegans | 33.6 | 281 | Citations (PDF) |
| 86 | Automated tracing of microtubules in electron tomograms of plastic embedded samples of Caenorhabditis elegans embryos | 2.3 | 114 | Citations (PDF) |
| 87 | Functional Repurposing Revealed by Comparing S. pombe and S. cerevisiae Genetic InteractionsCell, 2012, 149, 1339-1352 | 33.6 | 179 | Citations (PDF) |
| 88 | GTSE1 Is a Microtubule Plus-End Tracking Protein That Regulates EB1-Dependent Cell Migration | 2.3 | 61 | Citations (PDF) |
| 89 | Organelle Growth Control through Limiting Pools of Cytoplasmic Components | 3.6 | 221 | Citations (PDF) |
| 90 | Diverse transcription factor binding features revealed by genome-wide ChIP-seq in C. elegans | 4.6 | 253 | Citations (PDF) |
| 91 | A High-Resolution C. elegans Essential Gene Network Based on Phenotypic Profiling of a Complex Tissue | 33.6 | 220 | Citations (PDF) |
| 92 | Novel asymmetrically localizing components of human centrosomes identified by complementary proteomics methods | 7.3 | 311 | Citations (PDF) |
| 93 | Hydrostatic pressure and the actomyosin cortex drive mitotic cell rounding | 37.9 | 656 | Citations (PDF) |
| 94 | Force probing cell shape changes to molecular resolution | 6.7 | 29 | Citations (PDF) |
| 95 | Limiting Amounts of Centrosome Material Set Centrosome Size in C. elegans Embryos | 3.6 | 243 | Citations (PDF) |
| 96 | Extracellular Vesicles: Budding Regulated by a Phosphatidylethanolamine Translocase | 3.6 | 15 | Citations (PDF) |
| 97 | Atomic Force Microscopy to Study Mechanics of Living Mitotic Mammalian Cells | 1.9 | 1 | Citations (PDF) |
| 98 | Proliferating versus differentiating stem and cancer cells exhibit distinct midbody-release behaviour | 13.7 | 154 | Citations (PDF) |
| 99 | Systematic Phosphorylation Analysis of Human Mitotic Protein Complexes | 5.4 | 101 | Citations (PDF) |
| 100 | PAR proteins diffuse freely across the anterior–posterior boundary in polarized C. elegans embryos | 5.4 | 121 | Citations (PDF) |
| 101 | Active liquid-like behavior of nucleoli determines their size and shape in
Xenopus laevis
oocytes | 7.5 | 1,307 | Citations (PDF) |
| 102 | XMAP215 polymerase activity is built by combining multiple tubulin-binding TOG domains and a basic lattice-binding region | 7.5 | 162 | Citations (PDF) |
| 103 | High-efficiency counterselection recombineering for site-directed mutagenesis in bacterial artificial chromosomes | 24.6 | 55 | Citations (PDF) |
| 104 | Atomic Force Microscopy to Study Mechanics of Living Mitotic Mammalian Cells | 1.9 | 3 | Citations (PDF) |
| 105 | Phenotypic profiling of the human genome by time-lapse microscopy reveals cell division genes | 37.9 | 831 | Citations (PDF) |
| 106 | Live-cell imaging RNAi screen identifies PP2A–B55α and importin-β1 as key mitotic exit regulators in human cells | 16.3 | 332 | Citations (PDF) |
| 107 | Cortical domain correction repositions the polarity boundary to match the cytokinesis furrow in C. elegans embryos | 3.1 | 51 | Citations (PDF) |
| 108 | Genome-Wide Identification of Binding Sites Defines Distinct Functions for Caenorhabditis elegans PHA-4/FOXA in Development and Environmental Response | 3.2 | 174 | Citations (PDF) |
| 109 | Automated tracking and analysis of centrosomes in early Caenorhabditis elegans embryos | 4.7 | 27 | Citations (PDF) |
| 110 | FRAP Analysis of Membrane-Associated Proteins: Lateral Diffusion and Membrane-Cytoplasmic Exchange | 2.2 | 73 | Citations (PDF) |
| 111 | Quantitative Interaction Proteomics and Genome-wide Profiling of Epigenetic Histone Marks and Their Readers | 33.6 | 776 | Citations (PDF) |
| 112 | Sororin Mediates Sister Chromatid Cohesion by Antagonizing Wapl | 33.6 | 381 | Citations (PDF) |
| 113 | Systematic Analysis of Human Protein Complexes Identifies Chromosome Segregation Proteins | 36.3 | 496 | Citations (PDF) |
| 114 | Membrane Invaginations Reveal Cortical Sites that Pull on Mitotic Spindles in One-Cell C. elegans Embryos | 2.3 | 105 | Citations (PDF) |
| 115 | HAUS, the 8-Subunit Human Augmin Complex, Regulates Centrosome and Spindle Integrity | 3.6 | 272 | Citations (PDF) |
| 116 | Comparative profiling identifies C13orf3 as a component of the Ska complex required for mammalian cell division | 7.3 | 95 | Citations (PDF) |
| 117 | Growth, fluctuation and switching at microtubule plus ends | 78.1 | 162 | Citations (PDF) |
| 118 | EB1 Recognizes the Nucleotide State of Tubulin in the Microtubule Lattice | 2.3 | 152 | Citations (PDF) |
| 119 | BAC TransgeneOmics: a high-throughput method for exploration of protein function in mammals | 24.6 | 606 | Citations (PDF) |
| 120 | Characterization of Protein Dynamics in Asymmetric Cell Division by Scanning Fluorescence Correlation Spectroscopy | 2.2 | 55 | Citations (PDF) |
| 121 | Efficient chaperone-mediated tubulin biogenesis is essential for cell division and cell migration in C. elegans | 1.9 | 69 | Citations (PDF) |
| 122 | XMAP215 Is a Processive Microtubule Polymerase | 33.6 | 530 | Citations (PDF) |
| 123 | A Protein Domain-Based Interactome Network for C. elegans Early Embryogenesis | 33.6 | 207 | Citations (PDF) |
| 124 | Cell cycle progression requires the CDC-48
UFD−1/NPL−4
complex for efficient DNA replication | 7.5 | 79 | Citations (PDF) |
| 125 | Building a spindle of the correct length in human cells requires the interaction between TPX2 and Aurora A | 5.4 | 200 | Citations (PDF) |
| 126 | Acto-myosin reorganization and PAR polarity in C. elegans | 3.1 | 110 | Citations (PDF) |
| 127 | Functional Interaction between Phosducin-like Protein 2 and Cytosolic Chaperonin Is Essential for Cytoskeletal Protein Function and Cell Cycle Progression | 2.5 | 55 | Citations (PDF) |
| 128 | The Rho GTPase-activating proteins RGA-3 and RGA-4 are required to set the initial size of PAR domains in
Caenorhabditis elegans
one-cell embryos | 7.5 | 120 | Citations (PDF) |
| 129 | The C. elegans RSA Complex Localizes Protein Phosphatase 2A to Centrosomes and Regulates Mitotic Spindle Assembly | 33.6 | 95 | Citations (PDF) |
| 130 | Stress Generation and Filament Turnover during Actin Ring Constriction | 2.3 | 107 | Citations (PDF) |
| 131 | Genome-scale RNAi profiling of cell division in human tissue culture cells | 16.3 | 279 | Citations (PDF) |
| 132 | Microtubule polymerases and depolymerases | 3.9 | 285 | Citations (PDF) |
| 133 | Crystal Structure of a TOG Domain: Conserved Features of XMAP215/Dis1-Family TOG Domains and Implications for Tubulin Binding | 3.8 | 125 | Citations (PDF) |
| 134 | Yeast kinesin-8 depolymerizes microtubules in a length-dependent manner | 16.3 | 459 | Citations (PDF) |
| 135 | Cyclin E–Cdk2 temporally regulates centrosome assembly and establishment of polarity in Caenorhabditis elegans embryos | 16.3 | 63 | Citations (PDF) |
| 136 | Centriole assembly in Caenorhabditis elegans | 37.9 | 395 | Citations (PDF) |
| 137 | Global and local control of microtubule destabilization promoted by a catastrophe kinesin MCAK/XKCM1 | 1.4 | 20 | Citations (PDF) |
| 138 | Spindle Oscillations during Asymmetric Cell Division Require a Threshold Number of Active Cortical Force Generators | 3.6 | 187 | Citations (PDF) |
| 139 | CDC-42 and RHO-1 coordinate acto-myosin contractility and PAR protein localization during polarity establishment in C. elegansembryos | 3.1 | 138 | Citations (PDF) |
| 140 | Cell division | 4.8 | 118 | Citations (PDF) |
| 141 | Boveri revisited | 7.3 | 3 | Citations (PDF) |
| 142 | The conserved protein DCN-1/Dcn1p is required for cullin neddylation in C. elegans and S. cerevisiae | 37.9 | 170 | Citations (PDF) |
| 143 | A cytokinesis furrow is positioned by two consecutive signals | 37.9 | 213 | Citations (PDF) |
| 144 | Predictive models of molecular machines involved in Caenorhabditis elegans early embryogenesis | 37.9 | 262 | Citations (PDF) |
| 145 | Aurora A phosphorylation of TACC3/maskin is required for centrosome-dependent microtubule assembly in mitosis | 5.4 | 262 | Citations (PDF) |
| 146 | Aurora A activates D-TACC–Msps complexes exclusively at centrosomes to stabilize centrosomal microtubules | 5.4 | 156 | Citations (PDF) |
| 147 | A comparison of the ability of XMAP215 and tau to inhibit the microtubule destabilizing activity of XKCM1 | 3.7 | 17 | Citations (PDF) |
| 148 | RNA interference rescue by bacterial artificial chromosome transgenesis in mammalian tissue culture cells | 7.5 | 88 | Citations (PDF) |
| 149 | Role of mitochondria in the pheromone- and amiodarone-induced programmed death of yeast | 5.4 | 254 | Citations (PDF) |
| 150 | An Essential Function of the C. elegans Ortholog of TPX2 Is to Localize Activated Aurora A Kinase to Mitotic Spindles | 7.7 | 122 | Citations (PDF) |
| 151 | Identification and Characterization of Factors Required for Microtubule Growth and Nucleation in the Early C. elegans Embryo | 7.7 | 233 | Citations (PDF) |
| 152 | Centrosomes direct cell polarity independently of microtubule assembly in C. elegans embryos | 37.9 | 216 | Citations (PDF) |
| 153 | The Caenorhabditis elegans Centrosomal Protein SPD-2 Is Required for both Pericentriolar Material Recruitment and Centriole Duplication | 3.6 | 247 | Citations (PDF) |
| 154 | ASYMMETRIC CELL DIVISION IN C. ELEGANS: Cortical Polarity and Spindle Positioning | 9.6 | 220 | Citations (PDF) |
| 155 | Analysis of the distribution of the kinetochore protein Ndc10p in Saccharomyces cerevisiae using 3-D modeling of mitotic spindles | 2.0 | 29 | Citations (PDF) |
| 156 | Dynamics and mechanics of the microtubule plus end | 37.9 | 709 | Citations (PDF) |
| 157 | The
mbk‐2
kinase is required for inactivation of MEI‐1/katanin in the one‐cell
Caenorhabditis elegans
embryo | 5.2 | 71 | Citations (PDF) |
| 158 | SAS-4 Is a C. elegans Centriolar Protein that Controls Centrosome Size | 33.6 | 314 | Citations (PDF) |
| 159 | The kinetically dominant assembly pathway for centrosomal asters in Caenorhabditis elegans is γ-tubulin dependent | 5.4 | 229 | Citations (PDF) |
| 160 | GTP Binding Induces Filament Assembly of a Recombinant Septin | 3.6 | 93 | Citations (PDF) |
| 161 | XMAP215: a key component of the dynamic microtubule cytoskeleton | 12.0 | 134 | Citations (PDF) |
| 162 | A ubiquitin C-terminal hydrolase is required to maintain osmotic balance and execute actin-dependent processes in the earlyC. elegansembryo | 2.4 | 24 | Citations (PDF) |
| 163 | zyg-8, a Gene Required for Spindle Positioning in C. elegans, Encodes a Doublecortin-Related Kinase that Promotes Microtubule Assembly | 7.7 | 101 | Citations (PDF) |
| 164 | XMAP215 regulates microtubule dynamics through two distinct domains | 7.3 | 76 | Citations (PDF) |
| 165 | Polarity controls forces governing asymmetric spindle positioning in the Caenorhabditis elegans embryo | 37.9 | 514 | Citations (PDF) |
| 166 | Binding of the adenomatous polyposis coli protein to microtubules increases microtubule stability and is regulated by GSK3β phosphorylation | 3.6 | 431 | Citations (PDF) |
| 167 | Functional Analysis of Kinetochore Assembly in Caenorhabditis elegans | 5.4 | 441 | Citations (PDF) |
| 168 | Functional genomic analysis of cell division in C. elegans using RNAi of genes on chromosome III | 37.9 | 872 | Citations (PDF) |
| 169 | Centrosomes: Sic transit gloria centri | 3.6 | 15 | Citations (PDF) |
| 170 | Cyk-4 | 5.4 | 372 | Citations (PDF) |
| 171 | Cytoplasmic Dynein Is Required for Distinct Aspects of Mtoc Positioning, Including Centrosome Separation, in the One Cell Stage Caenorhabditis elegans Embryo | 5.4 | 436 | Citations (PDF) |
| 172 | Rab5 regulates motility of early endosomes on microtubules | 16.3 | 455 | Citations (PDF) |
| 173 | Control of microtubule dynamics by the antagonistic activities of XMAP215 and XKCM1 in Xenopus egg extracts | 16.3 | 407 | Citations (PDF) |
| 174 | The conserved protein kinase Ipl1 regulates microtubule binding to kinetochores in budding yeast | 4.6 | 393 | Citations (PDF) |
| 175 | Regulation of Saccharomyces cerevisiae kinetochores by the type 1 phosphatase Glc7p | 4.6 | 135 | Citations (PDF) |
| 176 | Structural changes at microtubule ends accompanying GTP hydrolysis: Information from a slowly hydrolyzable analogue of GTP, guanylyl ( , )methylenediphosphonate | 7.5 | 228 | Citations (PDF) |
| 177 | A role for microtubule dynamics in phagosome movement | 2.4 | 80 | Citations (PDF) |
| 178 | Molecular Requirements for Bi-directional Movement of Phagosomes Along Microtubules | 5.4 | 220 | Citations (PDF) |
| 179 | CDK1 Inactivation Regulates Anaphase Spindle Dynamics and Cytokinesis In Vivo | 5.4 | 173 | Citations (PDF) |
| 180 | Coupling cell division and cell death to microtubule dynamics | 3.9 | 209 | Citations (PDF) |
| 181 | Microtubule structure and dynamics | 3.9 | 98 | Citations (PDF) |
| 182 | Regulating the Yeast Kinetochore by Ubiquitin-Dependent Degradation and Skp1p-Mediated Phosphorylation | 33.6 | 145 | Citations (PDF) |
| 183 | Motor proteins of the eukaryotic cytoskeleton | 7.5 | 42 | Citations (PDF) |
| 184 | Mitotic chromatin regulates phosphorylation of Stathmin/Op18 | 37.9 | 123 | Citations (PDF) |
| 185 | Kinetochores distinguish GTP from GDP forms of the microtubule lattice | 37.9 | 47 | Citations (PDF) |
| 186 | A requirement for Rho and Cdc42 during cytokinesis in Xenopus embryos | 3.6 | 242 | Citations (PDF) |
| 187 | Distinct roles of PP1 and PP2A-like phosphatases in control of microtubule dynamics during mitosis | 7.3 | 173 | Citations (PDF) |
| 188 | Morphogenetic Properties of Microtubules and Mitotic Spindle Assembly | 33.6 | 286 | Citations (PDF) |
| 189 | Cortical domains and the mechanisms of asymmetric cell division | 12.0 | 49 | Citations (PDF) |
| 190 | Microtubule-associated Protein-dependent Binding of Phagosomes to Microtubules | 2.2 | 75 | Citations (PDF) |
| 191 | Cell Polarity: The importance of being polar | 3.6 | 29 | Citations (PDF) |
| 192 | Cell Fate Determination: When is a determinant a determinant? | 3.6 | 6 | Citations (PDF) |
| 193 | Identification of essential components of the S. cerevisiae kinetochore | 33.6 | 218 | Citations (PDF) |
| 194 | Molecular basis of chromosome movement | 6.4 | 5 | Citations (PDF) |
| 195 | Two different microtubule-based motor activities with opposite polarities in kinetochores | 37.9 | 208 | Citations (PDF) |
| 196 | Rab5 and Alsin regulate stress-activated cytoprotective signaling on mitochondria | 0.7 | 85 | Citations (PDF) |
| 197 | HspB8 prevents aberrant phase transitions of FUS by chaperoning its folded RNA-binding domain | 0.7 | 93 | Citations (PDF) |
| 198 | Priority of discovery in the life sciences | 0.7 | 36 | Citations (PDF) |
| 199 | Quantitative theory for the diffusive dynamics of liquid condensates | 0.7 | 65 | Citations (PDF) |