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Dive into the research topics where Enrique Rodriguez-Boulan is active.

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Featured researches published by Enrique Rodriguez-Boulan.


Nature Reviews Molecular Cell Biology | 2005

Organization of vesicular trafficking in epithelia

Enrique Rodriguez-Boulan; Geri Kreitzer; Anne Müsch

Experiments using mammalian epithelial cell lines have elucidated biosynthetic and recycling pathways for apical and basolateral plasma-membrane proteins, and have identified components that guide apical and basolateral proteins along these pathways. These components include apical and basolateral sorting signals, adaptors for basolateral signals, and docking and fusion proteins for vesicular trafficking. Recent live-cell-imaging studies provide a real-time view of sorting processes in epithelial cells, including key roles for actin, microtubules and motors in the organization of post-Golgi trafficking.


Cell | 1998

Sec6/8 Complex Is Recruited to Cell–Cell Contacts and Specifies Transport Vesicle Delivery to the Basal-Lateral Membrane in Epithelial Cells

Kent K. Grindstaff; Charles Yeaman; Niroshana Anandasabapathy; Shu-Chan Hsu; Enrique Rodriguez-Boulan; Richard H. Scheller; W. James Nelson

In budding yeast, the Sec6/8p complex is essential for generating cell polarity by specifying vesicle delivery to the bud tip. We show that Sec6/8 homologs are components of a cytosolic, approximately 17S complex in nonpolarized MDCK epithelial cells. Upon initiation of calcium-dependent cell-cell adhesion, approximately 70% of Sec6/8 is rapidly (t(1/2) approximately 3-6 hr) recruited to sites of cell-cell contact. In streptolysin-O-permeabilized MDCK cells, Sec8 antibodies inhibit delivery of LDL receptor to the basal-lateral membrane, but not p75NTR to the apical membrane. These results indicate that lateral membrane recruitment of the Sec6/8 complex is a consequence of cell-cell adhesion and is essential for the biogenesis of epithelial cell surface polarity.


Trends in Cell Biology | 2008

Itinerant exosomes: emerging roles in cell and tissue polarity.

Aparna Lakkaraju; Enrique Rodriguez-Boulan

Cells use secreted signals (e.g. chemokines and growth factors) and sophisticated vehicles such as argosomes, cytonemes, tunneling nanotubes and exosomes to relay important information to other cells, often over large distances. Exosomes, 30-100-nm intraluminal vesicles of multivesicular bodies (MVB) released upon exocytic fusion of the MVB with the plasma membrane, are increasingly recognized as a novel mode of cell-independent communication. Exosomes have been shown to function in antigen presentation and tumor metastasis, and in transmitting infectious agents. However, little is known about the biogenesis and function of exosomes in polarized cells. In this review, we discuss new evidence suggesting that exosomes participate in the transport of morphogens and RNA, and thus influence cell polarity and developmental patterning of tissues.


Nature Reviews Molecular Cell Biology | 2014

Organization and execution of the epithelial polarity programme

Enrique Rodriguez-Boulan; Ian G. Macara

Epithelial cells require apical–basal plasma membrane polarity to carry out crucial vectorial transport functions and cytoplasmic polarity to generate different cell progenies for tissue morphogenesis. The establishment and maintenance of a polarized epithelial cell with apical, basolateral and ciliary surface domains is guided by an epithelial polarity programme (EPP) that is controlled by a network of protein and lipid regulators. The EPP is organized in response to extracellular cues and is executed through the establishment of an apical–basal axis, intercellular junctions, epithelial-specific cytoskeletal rearrangements and a polarized trafficking machinery. Recent studies have provided insight into the interactions of the EPP with the polarized trafficking machinery and how these regulate epithelial polarization and depolarization.


Human Gene Therapy | 2000

Dynein- and Microtubule-Mediated Translocation of Adenovirus Serotype 5 Occurs after Endosomal Lysis

Philip L. Leopold; Geri Kreitzer; Naoki Miyazawa; Stephanie Rempel; K. Kevin Pfister; Enrique Rodriguez-Boulan; Ronald G. Crystal

Modified viruses are used as gene transfer vectors because of their ability to transfer genetic material efficiently to the nucleus of a target cell. To better understand intracellular translocation of adenovirus serotype 5 (Ad), fluorophores were covalently conjugated to Ad capsids, and movement of fluorescent Ad within the cytoplasm was observed during the first hour of infection of a human lung epithelial carcinoma cell line (A549). Ad translocation was characterized with respect to its ability to achieve nuclear envelope localization as well as directed movement in the cytoplasm. Whereas Ad achieved efficient nuclear localization 60 min after infection of A549 cells under control conditions, depolymerization of the microtubule cytoskeleton by addition of 25 microM nocodazole reversibly inhibited development of nuclear localization. In contrast, depolymerization of microfilaments by addition of 1 microM cytochalasin D had no effect on nuclear localization. Direct video observation of Ad motility showed that nocodazole, but not cytochalasin D, caused a reversible decrease in rapid linear translocations of Ad in the cytoplasm of A549 cells. Microinjection of function-blocking antibodies against the microtubule-dependent motor protein, cytoplasmic dynein, but not kinesin, blocked nuclear localization of Ad, consistent with net minus end-directed motility indicated by accumulation of Ad at mitotic spindles. Fluorescence ratio imaging revealed a neutral pH in the environment of translocating Ad, leading to a model in which the interaction of Ad with an intact microtubule cytoskeleton and functional cytoplasmic dynein occurs after escape from endosomes and is a necessary prerequisite to nuclear localization of adenovirus serotype 5.


Proceedings of the National Academy of Sciences of the United States of America | 2002

The lipofuscin component A2E selectively inhibits phagolysosomal degradation of photoreceptor phospholipid by the retinal pigment epithelium

Silvia C. Finnemann; Lawrence W. Leung; Enrique Rodriguez-Boulan

Daily phagocytosis of spent photoreceptor outer segments is a critical maintenance function performed by the retinal pigment epithelium (RPE) to preserve vision. Aging RPE accumulates lipofuscin, which includes N-retinylidene-N-retinylethanolamine (A2E) as the major autofluorescent component. We studied the effect of physiological levels of A2E in RPE cultures on their ability to phagocytose outer segments. A2E localized to lysosomes in cultured RPE as well as in human RPE in situ. A2E-loaded RPE cells in culture bound and internalized identical numbers of outer segments as control RPE indicating that A2E does not alter early steps of phagocytosis. A2E-loaded RPE degraded outer segment proteins efficiently but, strikingly, failed to completely digest phospholipids within 24 h. Because of the circadian rhythm of RPE phagocytosis in the eye, a delay in lipid degradation would likely result in a build up of undigested material in RPE that could contribute to the development of age-related macular degeneration.


Nature Cell Biology | 2000

Kinesin and dynamin are required for post-Golgi transport of a plasma-membrane protein

Geri Kreitzer; Alan D. Marmorstein; Patricia M. Okamoto; Richard B. Vallee; Enrique Rodriguez-Boulan

n higher eukaryotes, secretory and plasma-membrane proteins are transported from the endoplasmic reticulum (ER) to a central Golgi complex and subsequently packaged into membrane-bound carriers for delivery to the cell surface. The long-distance transport of post-Golgi organelles to the tips of axons or to developing hyphal extensions in Neurospora crassa shows an absolute requirement for microtubules and microtubule-associated motors. In contrast, microtubule disruption only moderately attenuates Golgi-toplasma-membrane transport in fibroblasts and randomizes surface delivery of select proteins in epithelial cells. The observed preservation of biosynthetic transport after microtubule disruption is probably due to the extensive fragmentation and redistribution of Golgi mini-stacks to regions immediately adjacent to both the ER and the plasma membrane. Here we have designed experiments to test the hypothesis that when the characteristic central localization of the Golgi is preserved, microtubules, kinesin and the GTPase dynamin are essential for post-Golgi trafficking. We ruled out a pharmacological approach to tackling this problem because we found that microtubule antagonists caused dispersal of the Golgi complex before complete microtubule disassembly occurred (see Supplementary Information). Instead, we microinjected functionblocking anti-kinesin antibodies HD and SUK-4 or cDNAs encoding a dominant-negative form of dynamin into cells expressing a green fluorescent protein (GFP)-tagged apical-membrane protein, p75. We show that kinesin and dynamin are required for different stages of post-Golgi transport. During a 2.5-h transport block at 20 °C, newly synthesized p75– GFP translocated from the ER to a juxtanuclear region (Fig. 1a, control, 0 min) and co-localized with Golgi/trans-Golgi network (TGN) markers (Fig. 1b). Within 4 h after shifting to the permissive temperature for transport, 32 °C, 81% of p75–GFP translocated from the Golgi to the plasma membrane (Fig. 1a, control, 240 min). The emptying rate of p75–GFP from the Golgi correlated with its arrival at the cell surface, as determined by immunocytochemical analysis of p75 in injected cells (data not shown) and by pulse– chase, surface-biotinylation assays of p75 or p75–GFP in stable MDCK transfectants (see Supplementary Information). Normal trafficking of p75 was unaffected by the GFP tag: microinjected p75–GFP was selectively delivered to the apical membrane of confluent, polarized MDCK cells (data not shown). I


Journal of Cell Science | 2009

Apical trafficking in epithelial cells : signals, clusters and motors

Ora A. Weisz; Enrique Rodriguez-Boulan

In the early days of epithelial cell biology, researchers working with kidney and/or intestinal epithelial cell lines and with hepatocytes described the biosynthetic and recycling routes followed by apical and basolateral plasma membrane (PM) proteins. They identified the trans-Golgi network and recycling endosomes as the compartments that carried out apical-basolateral sorting. They described complex apical sorting signals that promoted association with lipid rafts, and simpler basolateral sorting signals resembling clathrin-coated-pit endocytic motifs. They also noticed that different epithelial cell types routed their apical PM proteins very differently, using either a vectorial (direct) route or a transcytotic (indirect) route. Although these original observations have generally held up, recent studies have revealed interesting complexities in the routes taken by apically destined proteins and have extended our understanding of the machinery required to sustain these elaborate sorting pathways. Here, we critically review the current status of apical trafficking mechanisms and discuss a model in which clustering is required to recruit apical trafficking machineries. Uncovering the mechanisms responsible for polarized trafficking and their epithelial-specific variations will help understand how epithelial functional diversity is generated and the pathogenesis of many human diseases.


Nature Cell Biology | 2003

Three-dimensional analysis of post-Golgi carrier exocytosis in epithelial cells

Geri Kreitzer; Jan Schmoranzer; Seng Hui Low; Xin Li; Yunbo Gan; Thomas Weimbs; Sanford M. Simon; Enrique Rodriguez-Boulan

Targeted delivery of proteins to distinct plasma membrane domains is critical to the development and maintenance of polarity in epithelial cells. We used confocal and time-lapse total internal reflection fluorescence microscopy (TIR-FM) to study changes in localization and exocytic sites of post-Golgi transport intermediates (PGTIs) carrying GFP-tagged apical or basolateral membrane proteins during epithelial polarization. In non-polarized Madin Darby Canine Kidney (MDCK) cells, apical and basolateral PGTIs were present throughout the cytoplasm and were observed to fuse with the basal domain of the plasma membrane. During polarization, apical and basolateral PGTIs were restricted to different regions of the cytoplasm and their fusion with the basal membrane was completely abrogated. Quantitative analysis suggested that basolateral, but not apical, PGTIs fused with the lateral membrane in polarized cells, correlating with the restricted localization of Syntaxins 4 and 3 to lateral and apical membrane domains, respectively. Microtubule disruption induced Syntaxin 3 depolarization and fusion of apical PGTIs with the basal membrane, but affected neither the lateral localization of Syntaxin 4 or Sec6, nor promoted fusion of basolateral PGTIs with the basal membrane.


Journal of Biological Chemistry | 1999

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

Rosalia Mora; Vera L. Bonilha; Alan D. Marmorstein; Philipp E. Scherer; Dennis Brown; Michael P. Lisanti; Enrique Rodriguez-Boulan

We have characterized comparatively the subcellular distributions of caveolins-1 and -2, their interactions and their roles in caveolar formation in polarized epithelial cells. In Fischer rat thyroid (FRT) cells, which express low levels of caveolin-2 and no caveolin-1, caveolin-2 localizes exclusively to the Golgi complex but is partially redistributed to the plasma membrane upon co-expression of caveolin-1 by transfection or by adenovirus-mediated transduction. In Madin-Darby canine kidney (MDCK) cells, which constitutively express both caveolin-1 and -2, caveolin-2 localized to both the Golgi complex and to the plasma membrane, where it co-distributed with caveolin-1 in flat patches and in caveolae. In FRT cells, endogenous or overexpressed caveolin-2 did not associate with low density Triton insoluble membranes that floated in sucrose density gradients but was recruited to these membranes when co-expressed together with caveolin-1. In MDCK cells, both caveolin-1 and caveolin-2 associated with low density Triton-insoluble membranes. In FRT cells, transfection of caveolin-1 promoted the assembly of plasma membrane caveolae that localized preferentially (over 99%) to the basolateral surface, like constitutive caveolae of MDCK cells. In contrast, as expected from its intracellular distribution, endogenous or overexpressed caveolin-2 did not promote the assembly of caveolae; rather, it appeared to promote the assembly of intracellular vesicles in the peri-Golgi area. The data reported here demonstrate that caveolin-1 and -2 have different and complementary subcellular localizations and functional properties in polarized epithelial cells and suggest that the two proteins co-operate to carry out specific as yet unknown tasks between the Golgi complex and the cell surface.

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Anne Müsch

Albert Einstein College of Medicine

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Aparna Lakkaraju

University of Wisconsin-Madison

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