All Stories

  1. The Cwr1 protein kinase localizes to the plasma membrane and mediates resistance to cell wall stress in Candida albicans
  2. Conserved mechanism of Xrn1 regulation by glycolytic flux and protein aggregation
  3. Live Cell Fluorescence Microscopy – An End-to-End Workflow for High-Throughput Image and Data Analysis
  4. Live cell fluorescence microscopy—an end-to-end workflow for high-throughput image and data analysis
  5. Lsp1 partially substitutes for Pil1 function in eisosome assembly under stress conditions
  6. Two Different Phospholipases C, Isc1 and Pgc1, Cooperate To Regulate Mitochondrial Function
  7. Microdomain Protein Nce102 Is a Local Sensor of Plasma Membrane Sphingolipid Balance
  8. Blocking phosphatidylglycerol degradation in yeast defective in cardiolipin remodeling results in a new model of the Barth syndrome cellular phenotype
  9. Plasma Membrane Protein Nce102 Modulates Morphology and Function of the Yeast Vacuole
  10. Role of MCC/Eisosome in Fungal Lipid Homeostasis
  11. The lipid droplet protein Pgc1 controls the subcellular distribution of phosphatidylglycerol
  12. The Contribution of TRPV4 Channels to Astrocyte Volume Regulation and Brain Edema Formation
  13. Cell volume changes as revealed by fluorescence microscopy: Global vs local approaches
  14. The lipid droplet protein Pgc1 controls the subcellular distribution of phosphatidylglycerol
  15. mRNA decay is regulated via sequestration of the conserved 5′-3′ exoribonuclease Xrn1 at eisosome in yeast
  16. Transmembrane voltage: Potential to induce lateral microdomains
  17. The role of palmitoylation and transmembrane domain in sorting of transmembrane adaptor proteins
  18. Eisosomes promote the ability of Sur7 to regulate plasma membrane organization inCandida albicans
  19. Hypoxic HepG2 cell adaptation decreases ATP synthase dimers and ATP production in inflated cristae by mitofilin down-regulation concomitant to MICOS clustering
  20. New Insight Into the Roles of Membrane Microdomains in Physiological Activities of Fungal Cells
  21. Specific degradation of phosphatidylglycerol is necessary for proper mitochondrial morphology and function
  22. Correction: Evolutionarily Conserved 5'-3' Exoribonuclease Xrn1 Accumulates at Plasma Membrane-Associated Eisosomes in Post-Diauxic Yeast
  23. Evolutionarily Conserved 5’-3’ Exoribonuclease Xrn1 Accumulates at Plasma Membrane-Associated Eisosomes in Post-Diauxic Yeast
  24. The role of palmitoylation and transmembrane domain in sorting of transmembrane adaptor proteins
  25. Assembly of fission yeast eisosomes in the plasma membrane of budding yeast: Import of foreign membrane microdomains
  26. Depolarization affects the lateral microdomain structure of yeast plasma membrane
  27. Mitochondrial cristae remodeling in HepG2 cells adapted to hypoxia
  28. Sphingolipid levels crucially modulate lateral microdomain organization of plasma membrane in living yeast
  29. Mmi1, the Yeast Homologue of Mammalian TCTP, Associates with Stress Granules in Heat-Shocked Cells and Modulates Proteasome Activity
  30. Membrane Microdomains, Rafts, and Detergent-Resistant Membranes in Plants and Fungi
  31. Distribution of Cortical Endoplasmic Reticulum Determines Positioning of Endocytic Events in Yeast Plasma Membrane
  32. In Plant and Animal Cells, Detergent-Resistant Membranes Do Not Define Functional Membrane Rafts
  33. In vivo kinetics of U4/U6·U5 tri-snRNP formation in Cajal bodies
  34. C Terminus of Nce102 Determines the Structure and Function of Microdomains in the Saccharomyces cerevisiae Plasma Membrane
  35. Plants and fungi in the era of heterogeneous plasma membranes*
  36. The lateral compartmentation of the yeast plasma membrane
  37. Furrow-like invaginations of the yeast plasma membrane correspond to membrane compartment of Can1
  38. Plasma membrane microdomains regulate turnover of transport proteins in yeast
  39. Membrane potential governs lateral segregation of plasma membrane proteins and lipids in yeast.
  40. Membrane potential governs lateral segregation of plasma membrane proteins and lipids in yeast
  41. Dynamics of replication foci in early S phase as visualized by cross-correlation function
  42. Replication‐coupled modulation of early replicating chromatin domains detected by anti‐actin antibody
  43. Distribution of Can1p into stable domains reflects lateral protein segregation within the plasma membrane of livingS. cerevisiaecells
  44. Spatio‐temporal dynamics at rDNA foci: Global switching between DNA replication and transcription
  45. Electron microscopy of DNA replication in 3‐D: Evidence for similar‐sized replication foci throughout S‐phase
  46. Formation of Nuclear Splicing Factor Compartments Is Independent of Lamins A/C
  47. The nucleolus and transcription of ribosomal genes
  48. Pseudo Real-Time Method for Monitoring of the Limiting Anisotropy in Membranes
  49. Visualization of Protein Compartmentation within the Plasma Membrane of Living Yeast Cells
  50. Searching for active ribosomal genes in situ: light microscopy in light of the electron beam
  51. Ribosomal genes in focus
  52. Non-isotopic mapping of ribosomal RNA synthesis and processing in the nucleolus
  53. Nuclear pre-mRNA Compartmentalization: Trafficking of Released Transcripts to Splicing Factor Reservoirs
  54. In situ fluorescence visualization of bromouridine incorporated into newly transcribed nucleolar RNA
  55. Nuclear organization studied with the help of a hypotonic shift: its use permits hydrophilic molecules to enter into living cells
  56. Fluorescent probing of membrane potential in walled cells: diS‐C3(3) assay in Saccharomyces cerevisiae
  57. Monitoring of membrane potential changes inSaccharomyces cerevisiae by diS-C3(3) fluorescence
  58. Study of membrane potential changes of yeast cells caused by Killer Toxin K1