All Stories

  1. Metaphase kinetochore movements are regulated by kinesin-8 motors and microtubule dynamic instability
  2. Torques and Forces in the Mitotic Spindle
  3. Optogenetic reversible knocksideways, laser ablation, and photoactivation on the mitotic spindle in human cells
  4. Live cell X-ray imaging of autophagic vacuoles formation and chromatin dynamics in fission yeast
  5. Microtubule Sliding within the Bridging Fiber Pushes Kinetochore Fibers Apart to Segregate Chromosomes
  6. The mitotic spindle is chiral due to torques generated by motor proteins
  7. Mitotic spindle: kinetochore fibers hold on tight to interpolar bundles
  8. Pivot-and-bond model explains microtubule bundle formation
  9. PRC1‐labeled microtubule bundles and kinetochore pairs show one‐to‐one association in metaphase
  10. Meiotic Nuclear Oscillations Are Necessary to Avoid Excessive Chromosome Associations
  11. Mitotic Spindle Assembly: Building the Bridge between Sister K-Fibers
  12. Iva Tolić: Movements inside Cells and across Countries
  13. Cell division: Forces in the spindle
  14. Paired arrangement of kinetochores together with microtubule pivoting and dynamics drive kinetochore capture in meiosis I
  15. Bridging the gap between sister kinetochores
  16. Relaxation of interkinetochore tension after severing of a k-fiber depends on the length of the k-fiber stub
  17. Laser microsurgery reveals conserved viscoelastic behavior of the kinetochore
  18. Why publish single observations? Because Science Matters.
  19. Overlap microtubules link sister k-fibres and balance the forces on bi-oriented kinetochores
  20. Pulled Polymer Loops as a Model for the Alignment of Meiotic Chromosomes
  21. Fusion leads to effective segregation of damage during cell division: An analytical treatment
  22. Asymmetric damage segregation at cell division via protein aggregate fusion and attachment to organelles
  23. Kinesin-8 Motors Improve Nuclear Centering by Promoting Microtubule Catastrophe
  24. Single-molecule imaging of cytoplasmic dynein in vivo
  25. A Bundle of Antiparallel Microtubules Connects Sister K-Fibers and Balances Forces within the Metaphase Spindle
  26. Real-Time Imaging of DNA Damage in Yeast Cells Using Ultra-Short Near-Infrared Pulsed Laser Irradiation
  27. Isotropic actomyosin dynamics promote organization of the apical cell cortex in epithelial cells
  28. Fusion of Protein Aggregates Facilitates Asymmetric Damage Segregation
  29. Astral Microtubule Pivoting Promotes Their Search for Cortical Anchor Sites during Mitosis in Budding Yeast
  30. Swinging a sword: how microtubules search for their targets
  31. A divide and conquer strategy for the maximum likelihood localization of low intensity objects
  32. Dynein, microtubule and cargo: a ménage à trois
  33. Fission Yeast Does Not Age under Favorable Conditions, but Does So after Stress
  34. Dynein Motion Switches from Diffusive to Directed upon Cortical Anchoring
  35. Single-molecule imaging in vivo: the dancing building blocks of the cell
  36. Fluorescence Recovery After Photobleaching (FRAP) in the Fission Yeast Nucleus
  37. Pivoting of microtubules around the spindle pole accelerates kinetochore capture
  38. Identification and Regulation of a Molecular Module for Bleb-Based Cell Motility
  39. Life of a Single Dynein during Meiotic Nuclear Oscillations
  40. Microtubules Search for Lost Kinetochores by Pivoting Around the Spindle Pole
  41. Merotelic kinetochore attachment: causes and effects
  42. Iva Tolic-Nørrelykke
  43. Laser Ablation of the Microtubule Cytoskeleton: Setting Up and Working with an Ablation System
  44. Refreshed but vulnerable: Yeast daughter cells are more sensitive to stress than young mothers
  45. Laser microsurgery provides evidence for merotelic kinetochore attachments in fission yeast cells lacking Pcs1 or Clr4
  46. Cell Polarity: Which Way to Grow in an Electric Field?
  47. Force and length regulation in the microtubule cytoskeleton: lessons from fission yeast
  48. Collective Dynamics of Cytoplasmic Dynein Motors In Vitro
  49. Collective Action of Motor Proteins on Microtubules Regulates Large-Scale Forces in the Cell
  50. Optical Trapping and Laser Ablation of Microtubules in Fission Yeast
  51. Growth Pattern of Single Fission Yeast Cells Is Bilinear and Depends on Temperature and DNA Synthesis
  52. Dynein redistribution
  53. Association of mitochondria with spindle poles facilitates spindle alignment
  54. Push-me-pull-you: how microtubules organize the cell interior
  55. Bundling, sliding, and pulling microtubules in cells and in silico
  56. Spindle alignment
  57. tweezercalib 2.1: Faster version of MatLab package for precise calibration of optical tweezers
  58. QUANTITATIVE STUDIES OF SUBDIFFUSION IN LIVING CELLS AND ACTIN NETWORKS
  59. Hypergravity speeds up the development of T-lymphocyte motility
  60. tweezercalib 2.0: Faster version of MatLab package for precise calibration of optical tweezers
  61. Optical micromanipulation inside the cell: a focus in cell division
  62. Traction in smooth muscle cells varies with cell spreading
  63. Nuclear and Division-Plane Positioning Revealed by Optical Micromanipulation
  64. Optical micromanipulations inside yeast cells
  65. Laser nanosurgery and manipulation in living cells
  66. Anomalous Diffusion in Living Yeast Cells
  67. Positioning and Elongation of the Fission Yeast Spindle by Microtubule-Based Pushing
  68. MatLab program for precision calibration of optical tweezers
  69. Spatial and temporal traction response in human airway smooth muscle cells
  70. Cell prestress. II. Contribution of microtubules
  71. Cell prestress. I. Stiffness and prestress are closely associated in adherent contractile cells
  72. Traction fields, moments, and strain energy that cells exert on their surroundings
  73. Modeling the Insulin–Glucose Feedback System: The Significance of Pulsatile Insulin Secretion
  74. ChemInform Abstract: Complexity of Molecules.
  75. Complexity of Molecules†