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Dive into the research topics where Carmen Valente is active.

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Featured researches published by Carmen Valente.


Nature Cell Biology | 2005

CtBP3/BARS drives membrane fission in dynamin-independent transport pathways

Matteo Bonazzi; Stefania Spanò; Gabriele Turacchio; Claudia Cericola; Carmen Valente; Antonino Colanzi; Hee Seok Kweon; Victor W. Hsu; Elena V. Polishchuck; Roman S. Polishchuck; Michele Sallese; Teodoro Pulvirenti; Daniela Corda; Alberto Luini

Membrane fission is a fundamental step in membrane transport. So far, the only fission protein machinery that has been implicated in in vivo transport involves dynamin, and functions in several, but not all, transport pathways. Thus, other fission machineries may exist. Here, we report that carboxy-terminal binding protein 3/brefeldin A-ribosylated substrate (CtBP3/BARS) controls fission in basolateral transport from the Golgi to the plasma membrane and in fluid-phase endocytosis, whereas dynamin is not involved in these steps. Conversely, CtBP3/BARS protein is inactive in apical transport to the plasma membrane and in receptor-mediated endocytosis, both steps being controlled by dynamin. This indicates that CtBP3/BARS controls membrane fission in endocytic and exocytic transport pathways, distinct from those that require dynamin.


The EMBO Journal | 2008

The closure of Pak1‐dependent macropinosomes requires the phosphorylation of CtBP1/BARS

Prisca Liberali; Elina Kakkonen; Gabriele Turacchio; Carmen Valente; Alexander Spaar; Giuseppe Perinetti; Rainer A. Böckmann; Daniela Corda; Antonino Colanzi; Varpu Marjomäki; Alberto Luini

Membrane fission is an essential process in membrane trafficking and other cellular functions. While many fissioning and trafficking steps are mediated by the large GTPase dynamin, some fission events are dynamin independent and involve C‐terminal‐binding protein‐1/brefeldinA‐ADP ribosylated substrate (CtBP1/BARS). To gain an insight into the molecular mechanisms of CtBP1/BARS in fission, we have studied the role of this protein in macropinocytosis, a dynamin‐independent endocytic pathway that can be synchronously activated by growth factors. Here, we show that upon activation of the epidermal growth factor receptor, CtBP1/BARS is (a) translocated to the macropinocytic cup and its surrounding membrane, (b) required for the fission of the macropinocytic cup and (c) phosphorylated on a specific serine that is a substrate for p21‐activated kinase, with this phosphorylation being essential for the fission of the macropinocytic cup. Importantly, we also show that CtBP1/BARS is required for macropinocytic internalization and infection of echovirus 1. These results provide an insight into the molecular mechanisms of CtBP1/BARS activation in membrane fissioning, and extend the relevance of CtBP1/BARS‐induced fission to human viral infection.


Nature Cell Biology | 2008

A role for phosphatidic acid in COPI vesicle fission yields insights into Golgi maintenance

Jia Shu Yang; Helge Gad; Stella Y. Lee; Alexander A. Mironov; Leiliang Zhang; Galina V. Beznoussenko; Carmen Valente; Gabriele Turacchio; Akua N. Bonsra; Guangwei Du; Gianluca Baldanzi; Andrea Graziani; Sylvain G. Bourgoin; Michael A. Frohman; Alberto Luini; Victor W. Hsu

Proteins essential for vesicle formation by the Coat Protein I (COPI) complex are being identified, but less is known about the role of specific lipids. Brefeldin-A ADP-ribosylated substrate (BARS) functions in the fission step of COPI vesicle formation. Here, we show that BARS induces membrane curvature in cooperation with phosphatidic acid. This finding has allowed us to further delineate COPI vesicle fission into two sub-stages: 1) an earlier stage of bud-neck constriction, in which BARS and other COPI components are required, and 2) a later stage of bud-neck scission, in which phosphatidic acid generated by phospholipase D2 (PLD2) is also required. Moreover, in contrast to the disruption of the Golgi seen on perturbing the core COPI components (such as coatomer), inhibition of PLD2 causes milder disruptions, suggesting that such COPI components have additional roles in maintaining Golgi structure other than through COPI vesicle formation.


Journal of Biological Chemistry | 1999

Molecular Cloning and Functional Characterization of Brefeldin A-ADP-ribosylated Substrate A NOVEL PROTEIN INVOLVED IN THE MAINTENANCE OF THE GOLGI STRUCTURE

Stefania Spanfò; Maria Giuseppina Silletta; Antonino Colanzi; Saverio Alberti; Giusy Fiucci; Carmen Valente; Aurora Fusella; Mario Salmona; A. S. Mironov; Alberto Luini; Daniela Corda

Brefeldin A (BFA) is a fungal metabolite that disassembles the Golgi apparatus into tubular networks and causes the dissociation of coatomer proteins from Golgi membranes. We have previously shown that an additional effect of BFA is to stimulate the ADP-ribosylation of two cytosolic proteins of 38 and 50 kDa (brefeldin A-ADP-riboslyated substrate (BARS)) and that this effect greatly facilitates the Golgi-disassembling activity of the toxin. In this study, BARS has been purified from rat brain cytosol and microsequenced, and the BARS cDNA has been cloned. BARS shares high homology with two known proteins, C-terminal-binding protein 1 (CtBP1) and CtBP2. It is therefore a third member of the CtBP family. The role of BARS in Golgi disassembly by BFA was verified in permeabilized cells. In the presence of dialyzed cytosol that had been previously depleted of BARS or treated with an anti-BARS antibody, BFA potently disassembled the Golgi. However, in cytosol complemented with purified BARS, or even in control cytosols containing physiological levels of BARS, the action of BFA on Golgi disassembly was strongly inhibited. These results suggest that BARS exerts a negative control on Golgi tubulation, with important consequences for the structure and function of the Golgi complex.


Nature Cell Biology | 2011

COPI acts in both vesicular and tubular transport

Jia Shu Yang; Carmen Valente; Roman S. Polishchuk; Gabriele Turacchio; Emilie Layre; D. Branch Moody; Christina C. Leslie; Michael H. Gelb; William J. Brown; Daniela Corda; Alberto Luini; Victor W. Hsu

Intracellular transport occurs through two general types of carrier, either vesicles or tubules. Coat proteins act as the core machinery that initiates vesicle formation, but the counterpart that initiates tubule formation has been unclear. Here, we find that the coat protein I (COPI) complex initially drives the formation of Golgi buds. Subsequently, a set of opposing lipid enzymatic activities determines whether these buds become vesicles or tubules. Lysophosphatidic acid acyltransferase-γ (LPAATγ) promotes COPI vesicle fission for retrograde vesicular transport. In contrast, cytosolic phospholipase A2-α (cPLA2α) inhibits this fission event to induce COPI tubules, which act in anterograde intra-Golgi transport and Golgi ribbon formation. These findings not only advance a molecular understanding of how COPI vesicle fission is achieved, but also provide insight into how COPI acts in intra-Golgi transport and reveal an unexpected mechanistic relationship between vesicular and tubular transport.


Nature Cell Biology | 2012

A 14-3-3γ dimer-based scaffold bridges CtBP1-S/BARS to PI(4)KIIIβ to regulate post-Golgi carrier formation

Carmen Valente; Gabriele Turacchio; Stefania Mariggiò; Alessandro Pagliuso; Renato Gaibisso; Giuseppe Di Tullio; Michele Santoro; Fabio Formiggini; Stefania Spanò; Daniele Piccini; Roman S. Polishchuk; Antonino Colanzi; Alberto Luini; Daniela Corda

Large pleiomorphic carriers leave the Golgi complex for the plasma membrane by en bloc extrusion of specialized tubular domains, which then undergo fission. Several components of the underlying molecular machinery have been identified, including those involved in the budding/initiation of tubular carrier precursors (for example, the phosphoinositide kinase PI(4)KIIIβ, the GTPase ARF, and FAPP2), and in the fission of these precursors (for example, PKD, CtBP1-S/BARS). However, how these proteins interact to bring about carrier formation is poorly understood. Here, we describe a protein complex that mediates carrier formation and contains budding and fission molecules, as well as other molecules, such as the adaptor protein 14-3-3γ. Specifically, we show that 14-3-3γ dimers bridge CtBP1-S/BARS with PI(4)KIIIβ, and that the resulting complex is stabilized by phosphorylation by PKD and PAK. Disrupting the association of these proteins inhibits the fission of elongating carrier precursors, indicating that this complex couples the carrier budding and fission processes.


Nature Cell Biology | 2010

Rab6 and myosin II at the cutting edge of membrane fission

Carmen Valente; Roman S. Polishchuk; Maria Antonietta De Matteis

Rab GTPases regulate the dynamics of transport carriers by participating in their translocation across the cytoplasm, and in their docking and fusion with acceptor compartments. An interaction between Golgi-associated Rab6 and myosin II has now been shown to regulate the fission of Rab6-positive carriers, illuminating a previously unappreciated role for Rab6 and the actomyosin system in carrier biogenesis.


Scientific Reports | 2016

A reliable Raman-spectroscopy-based approach for diagnosis, classification and follow-up of B-cell acute lymphoblastic leukemia

Stefano Managò; Carmen Valente; Peppino Mirabelli; Diego Circolo; Filomena Basile; Daniela Corda; Anna Chiara De Luca

Acute lymphoblastic leukemia type B (B-ALL) is a neoplastic disorder that shows high mortality rates due to immature lymphocyte B-cell proliferation. B-ALL diagnosis requires identification and classification of the leukemia cells. Here, we demonstrate the use of Raman spectroscopy to discriminate normal lymphocytic B-cells from three different B-leukemia transformed cell lines (i.e., RS4;11, REH, MN60 cells) based on their biochemical features. In combination with immunofluorescence and Western blotting, we show that these Raman markers reflect the relative changes in the potential biological markers from cell surface antigens, cytoplasmic proteins, and DNA content and correlate with the lymphoblastic B-cell maturation/differentiation stages. Our study demonstrates the potential of this technique for classification of B-leukemia cells into the different differentiation/maturation stages, as well as for the identification of key biochemical changes under chemotherapeutic treatments. Finally, preliminary results from clinical samples indicate high consistency of, and potential applications for, this Raman spectroscopy approach.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Molecular mechanism and functional role of brefeldin A-mediated ADP-ribosylation of CtBP1/BARS

Antonino Colanzi; Giovanna Grimaldi; Giuliana Catara; Carmen Valente; Claudia Cericola; Prisca Liberali; Maurizio Ronci; Vasiliki Lalioti; Agostino Bruno; Andrea Beccari; Andrea Urbani; Antonio De Flora; Marco Nardini; Martino Bolognesi; Alberto Luini; Daniela Corda

ADP-ribosylation is a posttranslational modification that modulates the functions of many target proteins. We previously showed that the fungal toxin brefeldin A (BFA) induces the ADP-ribosylation of C-terminal–binding protein-1 short-form/BFA–ADP-ribosylation substrate (CtBP1-S/BARS), a bifunctional protein with roles in the nucleus as a transcription factor and in the cytosol as a regulator of membrane fission during intracellular trafficking and mitotic partitioning of the Golgi complex. Here, we report that ADP-ribosylation of CtBP1-S/BARS by BFA occurs via a nonconventional mechanism that comprises two steps: (i) synthesis of a BFA–ADP-ribose conjugate by the ADP-ribosyl cyclase CD38 and (ii) covalent binding of the BFA–ADP-ribose conjugate into the CtBP1-S/BARS NAD+-binding pocket. This results in the locking of CtBP1-S/BARS in a dimeric conformation, which prevents its binding to interactors known to be involved in membrane fission and, hence, in the inhibition of the fission machinery involved in mitotic Golgi partitioning. As this inhibition may lead to arrest of the cell cycle in G2, these findings provide a strategy for the design of pharmacological blockers of cell cycle in tumor cells that express high levels of CD38.


Frontiers in Cell and Developmental Biology | 2015

Mechanisms and Regulation of the Mitotic Inheritance of the Golgi Complex

Carmen Valente; Antonino Colanzi

In mammalian cells, the Golgi complex is structured in the form of a continuous membranous system composed of stacks connected by tubular bridges: the “Golgi ribbon.” At the onset of mitosis, the Golgi complex undergoes a multi-step fragmentation process that is required for its correct partition into the dividing cells. Importantly, inhibition of Golgi disassembly results in cell-cycle arrest at the G2 stage, which indicates that accurate inheritance of the Golgi complex is monitored by a “Golgi mitotic checkpoint.” Moreover, mitotic Golgi disassembly correlates with the release of a set of Golgi-localized proteins that acquire specific functions during mitosis, such as mitotic spindle formation and regulation of the spindle checkpoint. Most of these events are regulated by small GTPases of the Arf and Rab families. Here, we review recent studies that are revealing the fundamental mechanisms, the molecular players, and the biological significance of mitotic inheritance of the Golgi complex in mammalian cells. We also briefly comment on how Golgi partitioning is coordinated with mitotic progression.

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Daniela Corda

National Research Council

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Alberto Luini

National Research Council

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Roman S. Polishchuk

National Institutes of Health

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Giuliana Catara

National Research Council

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Victor W. Hsu

Brigham and Women's Hospital

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