Mon1a and FCHO2 are required for maintenance of Golgi architecture
暂无分享,去创建一个
[1] G. Juhász,et al. Rab26 controls secretory granule maturation and breakdown in Drosophila , 2023, Cellular and Molecular Life Sciences.
[2] C. Ungermann,et al. Molecular insights into endolysosomal microcompartment formation and maintenance , 2022, Biological chemistry.
[3] M. Fukuda,et al. TBC1D18 is a Rab5-GAP that coordinates endosome maturation together with Mon1 , 2022, The Journal of cell biology.
[4] C. Ungermann,et al. Targeting of the Mon1-Ccz1 Rab guanine nucleotide exchange factor to distinct organelles by a synergistic protein and lipid code , 2022, bioRxiv.
[5] Y. Wada,et al. The lysosomal V-ATPase a3 subunit is involved in localization of Mon1-Ccz1, the GEF for Rab7, to secretory lysosomes in osteoclasts , 2022, Scientific Reports.
[6] A. Castro,et al. Structural organization and dynamics of FCHo2 docking on membranes , 2022, eLife.
[7] B. Raught,et al. C5orf51 is a component of the MON1-CCZ1 complex and controls RAB7A localization and stability during mitophagy , 2021, Autophagy.
[8] Simon C Watkins,et al. Transient Fcho1/2⋅Eps15/R⋅AP-2 Nanoclusters Prime the AP-2 Clathrin Adaptor for Cargo Binding , 2016, Developmental cell.
[9] G. Schiavo,et al. Mon1–Ccz1 activates Rab7 only on late endosomes and dissociates from the lysosome in mammalian cells , 2016, Journal of Cell Science.
[10] Simon C Watkins,et al. A clathrin coat assembly role for the muniscin protein central linker revealed by TALEN-mediated gene editing , 2014, eLife.
[11] C. Ungermann,et al. Dynamic association of the PI3P-interacting Mon1-Ccz1 GEF with vacuoles is controlled through its phosphorylation by the type 1 casein kinase Yck3 , 2014, Molecular biology of the cell.
[12] A. Nakano,et al. Activation of the Rab7 GTPase by the MON1-CCZ1 Complex Is Essential for PVC-to-Vacuole Trafficking and Plant Growth in Arabidopsis[C][W] , 2014, Plant Cell.
[13] J. Piehler,et al. The Mon1–Ccz1 GEF activates the Rab7 GTPase Ypt7 via a longin-fold–Rab interface and association with PI3P-positive membranes , 2014, Journal of Cell Science.
[14] Jodie L. Abrahams,et al. Cell surface protein glycosylation in cancer , 2014, Proteomics.
[15] Bengt Winblad,et al. The role of protein glycosylation in Alzheimer disease , 2014, The FEBS journal.
[16] A. Linstedt,et al. Isoform-specific tethering links the Golgi ribbon to maintain compartmentalization , 2014, Molecular biology of the cell.
[17] B. Storrie,et al. Rab41 Is a Novel Regulator of Golgi Apparatus Organization That Is Needed for ER-To-Golgi Trafficking and Cell Growth , 2013, PloS one.
[18] Yanzhuang Wang,et al. Cell cycle regulation of Golgi membrane dynamics. , 2013, Trends in cell biology.
[19] M. Fortini,et al. Dmon1 controls recruitment of Rab7 to maturing endosomes in Drosophila , 2013, Journal of Cell Science.
[20] H. Freeze. Understanding Human Glycosylation Disorders: Biochemistry Leads the Charge* , 2013, The Journal of Biological Chemistry.
[21] S. Pfeffer. Rab GTPase localization and Rab cascades in Golgi transport. , 2012, Biochemical Society transactions.
[22] Prasad N. Paradkar,et al. Mon1a Protein Acts in Trafficking through the Secretory Apparatus* , 2012, The Journal of Biological Chemistry.
[23] B. Storrie,et al. Are Rab proteins the link between Golgi organization and membrane trafficking? , 2012, Cellular and Molecular Life Sciences.
[24] Jeffrey A Kamykowski,et al. Electron Tomography Reveals Rab6 Is Essential to the Trafficking of trans‐Golgi Clathrin and COPI‐Coated Vesicles and the Maintenance of Golgi Cisternal Number , 2012, Traffic.
[25] B. Wendland,et al. Distinct and separable activities of the endocytic clathrin coat components Fcho1/2 and AP-2 in developmental patterning , 2012, Nature Cell Biology.
[26] H. Freeze,et al. Golgi glycosylation and human inherited diseases. , 2011, Cold Spring Harbor perspectives in biology.
[27] Shiro Suetsugu,et al. Characterization of the EFC/F‐BAR domain protein, FCHO2 , 2011, Genes to cells : devoted to molecular & cellular mechanisms.
[28] Jen-Hsuan Wei,et al. Unraveling the Golgi Ribbon , 2010, Traffic.
[29] A. Linstedt,et al. Mitotic Inhibition of GRASP65 Organelle Tethering Involves Polo-like Kinase 1 (PLK1) Phosphorylation Proximate to an Internal PDZ Ligand* , 2010, The Journal of Biological Chemistry.
[30] C. Ostrowicz,et al. The Mon1-Ccz1 Complex Is the GEF of the Late Endosomal Rab7 Homolog Ypt7 , 2010, Current Biology.
[31] S. Keeney,et al. References and Notes Supporting Online Material Materials and Methods Figs. S1 to S5 Tables S1 and S2 References Movie S1 Fcho Proteins Are Nucleators of Clathrin-mediated Endocytosis , 2022 .
[32] Yi Sun,et al. Rab33b and Rab6 are Functionally Overlapping Regulators of Golgi Homeostasis and Trafficking , 2010, Traffic.
[33] Marino Zerial,et al. Identification of the Switch in Early-to-Late Endosome Transition , 2010, Cell.
[34] K. Ravichandran,et al. Identification of two evolutionarily conserved genes regulating processing of engulfed apoptotic cells , 2010, Nature.
[35] Yi Xiang,et al. GRASP55 and GRASP65 play complementary and essential roles in Golgi cisternal stacking , 2010, The Journal of cell biology.
[36] H. Hauri,et al. p28, A Novel ERGIC/cis Golgi Protein, Required for Golgi Ribbon Formation , 2010, Traffic.
[37] A. Colanzi,et al. Mitotic inheritance of the Golgi complex , 2009, FEBS letters.
[38] D. Ungar. Golgi linked protein glycosylation and associated diseases. , 2009, Seminars in cell & developmental biology.
[39] Jen-Hsuan Wei,et al. Mitotic division of the mammalian Golgi apparatus. , 2009, Seminars in cell & developmental biology.
[40] D. Stephens,et al. Specificity of cytoplasmic dynein subunits in discrete membrane-trafficking steps. , 2009, Molecular biology of the cell.
[41] G. Medina,et al. Avian Sarcoma Virus and Human Immunodeficiency Virus, Type 1 Use Different Subsets of ESCRT Proteins to Facilitate the Budding Process* , 2008, Journal of Biological Chemistry.
[42] A. Linstedt,et al. GRASP55 regulates Golgi ribbon formation. , 2008, Molecular biology of the cell.
[43] Adam Frost,et al. Structural Basis of Membrane Invagination by F-BAR Domains , 2008, Cell.
[44] A. Shestakova,et al. Rab6 regulates both ZW10/RINT-1 and conserved oligomeric Golgi complex-dependent Golgi trafficking and homeostasis. , 2007, Molecular biology of the cell.
[45] D. Corda,et al. Mitosis controls the Golgi and the Golgi controls mitosis. , 2007, Current opinion in cell biology.
[46] N. Andrews,et al. Genetic variation in Mon1a affects protein trafficking and modifies macrophage iron loading in mice , 2007, Nature Genetics.
[47] Adam Frost,et al. F-BAR proteins join the BAR family fold. , 2007, Structure.
[48] Rohit Mittal,et al. Structure and analysis of FCHo2 F-BAR domain: a dimerizing and membrane recruitment module that effects membrane curvature. , 2007, Structure.
[49] H. Fares,et al. Caenorhabditis elegans SAND‐1 is essential for RAB‐7 function in endosomal traffic , 2007, The EMBO journal.
[50] Ken Jacobson,et al. Methods to measure the lateral diffusion of membrane lipids and proteins. , 2006, Methods.
[51] L. Johannes,et al. Rab6A and Rab6A′ GTPases Play Non‐overlapping Roles in Membrane Trafficking , 2006, Traffic.
[52] F. Lanni,et al. GM130 and GRASP65-dependent lateral cisternal fusion allows uniform Golgi-enzyme distribution , 2006, Nature Cell Biology.
[53] James G McNally,et al. FRAP analysis of binding: proper and fitting. , 2005, Trends in cell biology.
[54] R. Pepperkok,et al. Regulation of microtubule-dependent recycling at the trans-Golgi network by Rab6A and Rab6A'. , 2004, Molecular biology of the cell.
[55] M. Larocca,et al. AKAP350 interaction with cdc42 interacting protein 4 at the Golgi apparatus. , 2004, Molecular biology of the cell.
[56] A. Linstedt,et al. Gene replacement reveals that p115/SNARE interactions are essential for Golgi biogenesis. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[57] Weilin Wu,et al. A novel approach for evaluating the efficiency of siRNAs on protein levels in cultured cells. , 2004, Nucleic acids research.
[58] D. Klionsky,et al. Yeast homotypic vacuole fusion requires the Ccz1–Mon1 complex during the tethering/docking stage , 2003, The Journal of cell biology.
[59] D. Klionsky,et al. The Ccz1-Mon1 Protein Complex Is Required for the Late Step of Multiple Vacuole Delivery Pathways* , 2002, The Journal of Biological Chemistry.
[60] C. I. Zeeuw,et al. Bicaudal-D regulates COPI-independent Golgi–ER transport by recruiting the dynein–dynactin motor complex , 2002, Nature Cell Biology.
[61] C. Downes,et al. Subcellular localization of phosphatidylinositol 4,5-bisphosphate using the pleckstrin homology domain of phospholipase C delta1. , 2002, The Biochemical journal.
[62] S. Kellokumpu,et al. Abnormal glycosylation and altered Golgi structure in colorectal cancer: dependence on intra‐Golgi pH , 2002, FEBS letters.
[63] G. Warren,et al. Sequential tethering of Golgins and catalysis of SNAREpin assembly by the vesicle-tethering protein p115 , 2002, The Journal of cell biology.
[64] A. Linstedt,et al. Evidence that Golgi structure depends on a p115 activity that is independent of the vesicle tether components giantin and GM130 , 2001, The Journal of cell biology.
[65] Wesley I. Sundquist,et al. Tsg101 and the Vacuolar Protein Sorting Pathway Are Essential for HIV-1 Budding , 2001, Cell.
[66] J. Dennis,et al. Protein glycosylation in development and disease , 1999, BioEssays : news and reviews in molecular, cellular and developmental biology.
[67] P. Chavrier,et al. ARNO3, a Sec7-domain guanine nucleotide exchange factor for ADP ribosylation factor 1, is involved in the control of Golgi structure and function. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[68] W. Balch,et al. A Rab1 mutant affecting guanine nucleotide exchange promotes disassembly of the Golgi apparatus , 1994, The Journal of cell biology.
[69] B. Goud,et al. The small GTP-binding protein rab6p is distributed from medial Golgi to the trans-Golgi network as determined by a confocal microscopic approach. , 1992, Journal of cell science.
[70] Y. Ikehara,et al. Brefeldin A causes disassembly of the Golgi complex and accumulation of secretory proteins in the endoplasmic reticulum. , 1988, The Journal of biological chemistry.
[71] Yanzhuang Wang,et al. Golgi biogenesis. , 2011, Cold Spring Harbor perspectives in biology.
[72] G. Warren,et al. Golgi architecture and inheritance. , 2002, Annual review of cell and developmental biology.
[73] E. Berger,et al. Localization of three human polypeptide GalNAc-transferases in HeLa cells suggests initiation of O-linked glycosylation throughout the Golgi apparatus. , 1998, Journal of cell science.