Literature DB >> 28931526

Cellubrevin/vesicle-associated membrane protein-3-mediated endocytosis and trafficking regulate platelet functions.

Meenakshi Banerjee1, Smita Joshi1, Jinchao Zhang1, Carole L Moncman1, Shilpi Yadav2, Beth A Bouchard3, Brian Storrie2, Sidney W Whiteheart1.   

Abstract

Endocytosis is key to fibrinogen (Fg) uptake, trafficking of integrins (αIIbβ3, αvβ3), and purinergic receptors (P2Y1, P2Y12), and thus normal platelet function. However, the molecular machinery required and possible trafficking routes are still ill-defined. To further identify elements of the platelet endocytic machinery, we examined the role of a vesicle-residing, soluble N-ethylmaleimide factor attachment protein receptor (v-SNARE) called cellubrevin/vesicle-associated membrane protein-3 (VAMP-3) in platelet function. Although not required for normal platelet exocytosis or hemostasis, VAMP-3-/- mice had less platelet-associated Fg, indicating a defect in Fg uptake/storage. Other granule markers were unaffected. Direct experiments, both in vitro and in vivo, showed that loss of VAMP-3 led to a robust defect in uptake/storage of Fg in platelets and cultured megakaryocytes. Uptake of the fluid-phase marker, dextran, was only modestly affected. Time-dependent uptake and endocytic trafficking of Fg and dextran were followed using 3-dimensional-structured illumination microscopy. Dextran uptake was rapid compared with Fg, but both cargoes progressed through Rab4+, Rab11+, and von Willebrand factor (VWF)+ compartments in wild-type platelets in a time-dependent manner. In VAMP-3-/- platelets, the 2 cargoes showed limited colocalization with Rab4, Rab11, or VWF. Loss of VAMP-3 also affected some acute platelet functions, causing enhanced spreading on Fg and fibronectin and faster clot retraction compared with wild-type. In addition, the rate of Janus kinase 2 phosphorylation, initiated through the thrombopoietin receptor (TPOR/Mpl) activation, was affected in VAMP-3-/- platelets. Collectively, our studies show that platelets are capable of a range of endocytosis steps, with VAMP-3 being pivotal in these processes.
© 2017 by The American Society of Hematology.

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Year:  2017        PMID: 28931526      PMCID: PMC5746669          DOI: 10.1182/blood-2017-02-768176

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  49 in total

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Journal:  Blood       Date:  1993-01-01       Impact factor: 22.113

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Journal:  Blood       Date:  2011-01-11       Impact factor: 22.113

Review 6.  The ins and outs of endocytic trafficking in platelet functions.

Authors:  Meenakshi Banerjee; Sidney W Whiteheart
Journal:  Curr Opin Hematol       Date:  2017-09       Impact factor: 3.284

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Journal:  Blood       Date:  2003-05-08       Impact factor: 22.113

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  20 in total

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Authors:  Charles J Lowenstein
Journal:  Blood       Date:  2017-12-28       Impact factor: 22.113

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Authors:  Shauna L French; Kirill R Butov; Isabelle Allaeys; Jorge Canas; Golnaz Morad; Patricia Davenport; Audrée Laroche; Natalia M Trubina; Joseph E Italiano; Marsha A Moses; Martha Sola-Visner; Eric Boilard; Mikhail A Panteleev; Kellie R Machlus
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4.  Platelet-HIV: interactions and their implications.

Authors:  Sidney W Whiteheart
Journal:  Platelets       Date:  2022-01-04       Impact factor: 3.862

5.  VAMP3 and VAMP8 Regulate the Development and Functionality of Parasitophorous Vacuoles Housing Leishmania amazonensis.

Authors:  Olivier Séguin; Linh Thuy Mai; Hamlet Acevedo Ospina; Marie-Michèle Guay-Vincent; Sidney W Whiteheart; Simona Stäger; Albert Descoteaux
Journal:  Infect Immun       Date:  2022-02-07       Impact factor: 3.609

6.  Mechanism of platelet α-granule biogenesis: study of cargo transport and the VPS33B-VPS16B complex in a model system.

Authors:  Andrea L Ambrosio; Santiago M Di Pietro
Journal:  Blood Adv       Date:  2019-09-10

7.  Alterations in platelet secretion differentially affect thrombosis and hemostasis.

Authors:  Smita Joshi; Meenakshi Banerjee; Jinchao Zhang; Akhil Kesaraju; Irina D Pokrovskaya; Brian Storrie; Sidney W Whiteheart
Journal:  Blood Adv       Date:  2018-09-11

8.  SNARE-dependent membrane fusion initiates α-granule matrix decondensation in mouse platelets.

Authors:  Irina D Pokrovskaya; Smita Joshi; Michael Tobin; Rohan Desai; Maria A Aronova; Jeffrey A Kamykowski; Guofeng Zhang; Sidney W Whiteheart; Richard D Leapman; Brian Storrie
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9.  Platelets and Immunity: Going Viral.

Authors:  Milka Koupenova; Jane E Freedman
Journal:  Arterioscler Thromb Vasc Biol       Date:  2020-06-24       Impact factor: 8.311

10.  Megakaryocytes package contents into separate α-granules that are differentially distributed in platelets.

Authors:  Elisabeth M Battinelli; Jonathan N Thon; Ross Okazaki; Christian G Peters; Prakrith Vijey; Adrian R Wilkie; Leila J Noetzli; Robert Flaumenhaft; Joseph E Italiano
Journal:  Blood Adv       Date:  2019-10-22
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