The molecular organization of flat and curved caveolae indicates bendable structural units at the plasma membrane
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V. Haucke | Kem A. Sochacki | Martin Lehmann | Andrea M. Dickey | Justin W. Taraska | D. Puchkov | C. Matthaeus | Andrea M Dickey | Claudia Matthaeus
[1] J. Porta,et al. Molecular architecture of the human caveolin-1 complex , 2022, bioRxiv.
[2] C. Spahn,et al. Cryo-electron tomography reveals structural insights into the membrane binding and remodeling activity of dynamin-like EHDs , 2021, bioRxiv.
[3] M. Strub,et al. The nanoscale molecular morphology of docked exocytic dense-core vesicles in neuroendocrine cells , 2021, Nature Communications.
[4] R. Parton,et al. Key phases in the formation of caveolae. , 2021, Current opinion in cell biology.
[5] Hong Liang,et al. Caveolin-1 and cavin1 act synergistically to generate a unique lipid environment in caveolae , 2021, The Journal of cell biology.
[6] Justin W. Taraska,et al. Energy and Dynamics of Caveolae Trafficking , 2021, Frontiers in Cell and Developmental Biology.
[7] A. Echarri,et al. Caveolae: Mechanosensing and mechanotransduction devices linking membrane trafficking to mechanoadaptation. , 2020, Current opinion in cell biology.
[8] J. Hinshaw,et al. The structure and spontaneous curvature of clathrin lattices at the plasma membrane , 2020, bioRxiv.
[9] J. Porta,et al. Structure and assembly of CAV1 8S complexes revealed by single particle electron microscopy , 2020, Science Advances.
[10] Elizabeth H. Chen,et al. Dynamin regulates the dynamics and mechanical strength of the actin cytoskeleton as a multifilament actin-bundling protein , 2020, Nature Cell Biology.
[11] S. Meadows,et al. EHBP1 and EHD2 regulate Dll4 caveolin-mediated endocytosis during blood vessel development , 2020, bioRxiv.
[12] Maria Ahnlund,et al. Lipid accumulation controls the balance between surface connection and scission of caveolae , 2020, eLife.
[13] M. Blüher,et al. EHD2-mediated restriction of caveolar dynamics regulates cellular fatty acid uptake , 2020, Proceedings of the National Academy of Sciences.
[14] R. Parton,et al. Caveolae: Formation, dynamics, and function. , 2020, Current opinion in cell biology.
[15] M. Kozlov,et al. Caveolae and lipid sorting: Shaping the cellular response to stress , 2020, The Journal of cell biology.
[16] I. Nabi,et al. Caveolae: The FAQs , 2020, Traffic.
[17] E. Calvo,et al. An Abl-FBP17 mechanosensing system couples local plasma membrane curvature and stress fiber remodeling during mechanoadaptation , 2019, Nature Communications.
[18] R. Parton,et al. Cavin1 intrinsically disordered domains are essential for fuzzy electrostatic interactions and caveola formation , 2019, Nature Communications.
[19] M. Gollasch,et al. eNOS-NO-induced small blood vessel relaxation requires EHD2-dependent caveolae stabilization , 2019, PloS one.
[20] L. Johannes,et al. Dystrophy-associated caveolin-3 mutations reveal that caveolae couple IL6/STAT3 signaling with mechanosensing in human muscle cells , 2019, Nature Communications.
[21] M. Kozlov,et al. Membrane Curvature and Tension Control the Formation and Collapse of Caveolar Superstructures. , 2019, Developmental cell.
[22] L. Johannes,et al. EHD2 is a mechanotransducer connecting caveolae dynamics with gene transcription , 2018, The Journal of cell biology.
[23] Dominic J. B. Hunter,et al. Cell-free formation and interactome analysis of caveolae , 2018, The Journal of cell biology.
[24] M. Kessels,et al. Deciphering caveolar functions by syndapin III KO-mediated impairment of caveolar invagination , 2017, eLife.
[25] Marie-Paule Strub,et al. Endocytic proteins are partitioned at the edge of the clathrin lattice in mammalian cells , 2017, Nature Cell Biology.
[26] O. Daumke,et al. Structural insights into the activation mechanism of dynamin-like EHD ATPases , 2017, Proceedings of the National Academy of Sciences.
[27] E. Larsson,et al. EHD2 restrains dynamics of caveolae by an ATP-dependent, membrane-bound, open conformation , 2017, Proceedings of the National Academy of Sciences.
[28] D. James,et al. A novel Rab10-EHBP1-EHD2 complex essential for the autophagic engulfment of lipid droplets , 2016, Science Advances.
[29] A. Helenius,et al. Model for the architecture of caveolae based on a flexible, net-like assembly of Cavin1 and Caveolin discs , 2016, Proceedings of the National Academy of Sciences.
[30] K. Yanagisawa,et al. ROR1 sustains caveolae and survival signalling as a scaffold of cavin-1 and caveolin-1 , 2016, Nature Communications.
[31] R. Parton,et al. Molecular Characterization of Caveolin-induced Membrane Curvature* , 2015, The Journal of Biological Chemistry.
[32] O. Daumke,et al. Phosphorylation of PACSIN2 by protein kinase C triggers the removal of caveolae from the plasma membrane , 2015, Journal of Cell Science.
[33] M. A. Del Pozo,et al. Caveolae – mechanosensitive membrane invaginations linked to actin filaments , 2015, Journal of Cell Science.
[34] C. G. Hansen,et al. Dynamic caveolae exclude bulk membrane proteins and are required for sorting of excess glycosphingolipids , 2015, Nature Communications.
[35] S. Mayor,et al. Building endocytic pits without clathrin , 2015, Nature Reviews Molecular Cell Biology.
[36] R. Parton,et al. Cavin family proteins and the assembly of caveolae , 2015, Journal of Cell Science.
[37] F. Sotgia,et al. Caveolae and signalling in cancer , 2015, Nature Reviews Cancer.
[38] Travis L. Rodkey,et al. Caveolae regulate the nanoscale organization of the plasma membrane to remotely control Ras signaling , 2014, The Journal of cell biology.
[39] Astrid Magenau,et al. Single-molecule analysis reveals self assembly and nanoscale segregation of two distinct cavin subcomplexes on caveolae , 2014, eLife.
[40] Gleb Shtengel,et al. Correlative super-resolution fluorescence and metal replica transmission electron microscopy , 2014, Nature Methods.
[41] P. De Camilli,et al. Dynamin triple knockout cells reveal off target effects of commonly used dynamin inhibitors , 2013, Journal of Cell Science.
[42] N. Naslavsky,et al. Role of Phosphatidylinositol 4,5-Bisphosphate in Regulating EHD2 Plasma Membrane Localization , 2013, PloS one.
[43] Mason R. Mackey,et al. Molecular Composition and Ultrastructure of the Caveolar Coat Complex , 2013, PLoS biology.
[44] Kai Simons,et al. Constitutive Formation of Caveolae in a Bacterium , 2012, Cell.
[45] M. Kessels,et al. Ultrastructural freeze-fracture immunolabeling identifies plasma membrane-localized syndapin II as a crucial factor in shaping caveolae , 2012, Histochemistry and Cell Biology.
[46] A. Helenius,et al. Oligomers of the ATPase EHD2 confine caveolae to the plasma membrane through association with actin , 2012, The EMBO journal.
[47] O. Daumke,et al. EHD2 regulates caveolar dynamics via ATP-driven targeting and oligomerization , 2012, Molecular biology of the cell.
[48] P. Oh,et al. Endothelin Induces Rapid, Dynamin-mediated Budding of Endothelial Caveolae Rich in ET-B* , 2012, The Journal of Biological Chemistry.
[49] Pietro De Camilli,et al. Dynamin, a membrane-remodelling GTPase , 2012, Nature Reviews Molecular Cell Biology.
[50] C. G. Hansen,et al. Pacsin 2 is recruited to caveolae and functions in caveolar biogenesis , 2011, Journal of Cell Science.
[51] S. Suetsugu,et al. Essential role of PACSIN2/syndapin-II in caveolae membrane sculpting , 2011, Journal of Cell Science.
[52] Robert G. Parton,et al. Cells Respond to Mechanical Stress by Rapid Disassembly of Caveolae , 2011, Cell.
[53] P. De Camilli,et al. Coordinated actions of actin and BAR proteins upstream of dynamin at endocytic clathrin-coated pits. , 2009, Developmental cell.
[54] T. Takenawa,et al. A distinct pool of phosphatidylinositol 4,5-bisphosphate in caveolae revealed by a nanoscale labeling technique , 2009, Proceedings of the National Academy of Sciences.
[55] M. Cristina Cardoso,et al. A Versatile Nanotrap for Biochemical and Functional Studies with Fluorescent Fusion Proteins*S , 2008, Molecular & Cellular Proteomics.
[56] M. Kirkham,et al. PTRF-Cavin, a Conserved Cytoplasmic Protein Required for Caveola Formation and Function , 2008, Cell.
[57] O. Daumke,et al. Architectural and mechanistic insights into an EHD ATPase involved in membrane remodelling , 2007, Nature.
[58] R. Parton,et al. The multiple faces of caveolae , 2007, Nature Reviews Molecular Cell Biology.
[59] T. Kurzchalia,et al. Getting rid of caveolins: phenotypes of caveolin-deficient animals. , 2005, Biochimica et biophysica acta.
[60] David N Mastronarde,et al. Automated electron microscope tomography using robust prediction of specimen movements. , 2005, Journal of structural biology.
[61] M. McNiven,et al. Caveolin-1 interacts directly with dynamin-2. , 2005, Journal of molecular biology.
[62] M. Czech,et al. Role of EHD1 and EHBP1 in Perinuclear Sorting and Insulin-regulated GLUT4 Recycling in 3T3-L1 Adipocytes* , 2004, Journal of Biological Chemistry.
[63] I. Nabi,et al. Caveolin-1 Is a Negative Regulator of Caveolae-mediated Endocytosis to the Endoplasmic Reticulum* , 2002, The Journal of Biological Chemistry.
[64] P. De Camilli,et al. Dynamin at actin tails , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[65] M. McNiven,et al. The large GTPase dynamin regulates actin comet formation and movement in living cells , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[66] P. Oh,et al. Dynamin at the Neck of Caveolae Mediates Their Budding to Form Transport Vesicles by GTP-driven Fission from the Plasma Membrane of Endothelium , 1998, The Journal of cell biology.
[67] M. McNiven,et al. Dynamin-mediated Internalization of Caveolae , 1998, The Journal of cell biology.
[68] Richard G. W. Anderson,et al. Caveolin, a protein component of caveolae membrane coats , 1992, Cell.
[69] Kem A. Sochacki,et al. Correlative Fluorescence Super-Resolution Localization Microscopy and Platinum Replica EM on Unroofed Cells. , 2017, Methods in molecular biology.
[70] J R Kremer,et al. Computer visualization of three-dimensional image data using IMOD. , 1996, Journal of structural biology.