Signal transducing molecules and glycosyl-phosphatidylinositol-linked proteins form a caveolin-rich insoluble complex in MDCK cells (original) (raw)

Caveolae, caveolin and caveolin-rich membrane domains: a signalling hypothesis

Massimo Sargiacomo

Trends in Cell Biology, 1994

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Caveolins, a Family of Scaffolding Proteins for Organizing "Preassembled Signaling Complexes" at the Plasma Membrane

Michael Lisanti

Journal of Biological Chemistry, 1998

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A Molecular Dissection of Caveolin-1 Membrane Attachment and Oligomerization. TWO SEPARATE REGIONS OF THE CAVEOLIN-1 C-TERMINAL DOMAIN MEDIATE MEMBRANE BINDING AND OLIGOMER/OLIGOMER INTERACTIONS IN VIVO

Michael Lisanti

Journal of Biological Chemistry, 2000

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Caveolin transfection results in caveolae formation but not apical sorting of glycosylphosphatidylinositol (GPI)-anchored proteins in epithelial cells

Lucio Nitsch

The Journal of cell …, 1998

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Caveolins: structure and function in signal transduction

Wanda Krajewska

Cellular & molecular biology letters, 2004

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Caveolins, caveolae, and lipid rafts in cellular transport, signaling, and disease

Lisette Leyton

Biochemistry and Cell Biology-biochimie Et Biologie Cellulaire, 2004

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Caveolin-1 and -2in the Exocytic Pathway of MDCK Cells

Elina Ikonen

The Journal of Cell Biology, 1998

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A Role for the Caveolin Scaffolding Domain in Mediating the Membrane Attachment of Caveolin-1. THE CAVEOLIN SCAFFOLDING DOMAIN IS BOTH NECESSARY AND SUFFICIENT FOR MEMBRANE BINDING IN VITRO

Michael Lisanti

Journal of Biological Chemistry, 1999

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Characterization of caveolin-rich membrane domains isolated from an endothelial-rich source: implications for human disease

Michael Lisanti

The Journal of Cell Biology, 1994

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Caveolins, liquid-ordered domains, and signal transduction

William Sessa

Molecular and cellular biology, 1999

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Caveolin-2 Localizes to the Golgi Complex but Redistributes to Plasma Membrane, Caveolae, and Rafts when Co-expressed with Caveolin-1

Michael Lisanti

Journal of Biological Chemistry, 1999

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Phosphatidylserine dictates the assembly and dynamics of caveolae in the plasma membrane

Christopher Yip

Journal of Biological Chemistry

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Caveolin-1 Binding to Endoplasmic Reticulum Membranes and Entry into the Regulated Secretory Pathway Are Regulated by Serine Phosphorylation. PROTEIN SORTING AT THE LEVEL OF THE ENDOPLASMIC RETICULUM

Michael Lisanti

Journal of Biological Chemistry, 2000

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Organized Endothelial Cell Surface Signal Transduction in Caveolae Distinct from Glycosylphosphatidylinositol-anchored Protein Microdomains

Jan Schnitzer

Journal of Biological Chemistry, 1997

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A novel role for a YXXΦ motif in directing the caveolin-dependent sorting of membrane-spanning proteins

JOSE NICOLAS CHAN COX

Journal of Cell Science, 2007

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Co-purification and Direct Interaction of Ras with Caveolin, an Integral Membrane Protein of Caveolae Microdomains

Lawrence Quilliam

Journal of Biological Chemistry

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Thioacylation is required for targeting G-protein subunit Go1α to detergent-insoluble caveolin-containing membrane domains

Francesca Guzzi

Biochemical Journal, 2001

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Caveolae Are Highly Immobile Plasma Membrane Microdomains, Which Are not Involved in Constitutive Endocytic Trafficking

P. Thomsen

Molecular Biology of the Cell, 2002

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Regulation of intracellular signaling and function by caveolin

Hemal Patel

The FASEB Journal, 2014

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Src-dependent phosphorylation of caveolin-1 Tyr14 promotes swelling and release of caveolae

A. Shajahan

Molecular biology of the cell, 2016

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Caveolae as Organizers of Pharmacologically Relevant Signal Transduction Molecules

Paul Insel

Annual Review of Pharmacology and Toxicology, 2008

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Compartmentation of G-protein-coupled receptors and their signalling components in lipid rafts and caveolae

Paul Insel

Biochemical Society Transactions, 2005

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Caveolin-1 is not essential for biosynthetic apical membrane transport

Soazig Le Lay

2005

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Oligomeric structure of caveolin: implications for caveolae membrane organization

Massimo Sargiacomo

Proceedings of the National Academy of Sciences of the United States of America, 1995

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Caveolin-2 Is Targeted to Lipid Droplets, a New "Membrane Domain" in the Cell

May Kumi

The Journal of cell …, 2001

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Expression of Caveolin-1 Is Required for the Transport of Caveolin-2 to the Plasma Membrane

isabella parolini

Journal of Biological Chemistry, 1999

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Co-purification and direct interaction of Ras with caveolin, an integral membrane protein of caveolae microdomains. Detergent-free purification of caveolae microdomains

Lawrence Quilliam

Journal of Biological Chemistry

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VIP21-caveolin, a membrane protein constituent of the caveolar coat, oligomerizes in vivo and in vitro

Teymuras Kurzchalia

Molecular Biology of the Cell, 1995

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Intracellular Retention of Glycosylphosphatidyl Inositol-Linked Proteins in Caveolin-Deficient Cells

Michael Lisanti

Molecular and Cellular Biology, 2002

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Regulation of caveolin-1 membrane trafficking by the Na/K-ATPase

William Gunning

The Journal of Cell Biology, 2008

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Caveolae and human disease: functional roles in transcytosis, potocytosis, signalling and cell polarity

Massimo Sargiacomo

Seminars in Developmental Biology, 1995

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Src Tyrosine Kinases, Gα Subunits, and H-Ras Share a Common Membrane-anchored Scaffolding Protein, Caveolin

Jacques Couet

Journal of Biological Chemistry

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Caveolin-1 and Lipid Microdomains Regulate Gs Trafficking and Attenuate Gs/Adenylyl Cyclase Signaling

Mark Rasenick

Molecular Pharmacology, 2009

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