Literature DB >> 28010140

The cellular basis of platelet secretion: Emerging structure/function relationships.

Shilpi Yadav1, Brian Storrie1.   

Abstract

Platelet activation has long been known to be accompanied by secretion from at least three types of compartments. These include dense granules, the major source of small molecules; α-granules, the major protein storage organelle; and lysosomes, the site of acid hydrolase storage. Despite ~60 years of research, there are still many unanswered questions about the cell biology of platelet secretion: for example, how are these secretory organelles organized to support cargo release and what are the key routes of cargo release, granule to plasma membrane or granule to canalicular system. Moreover, in recent years, increasing evidence points to the platelet being organized for secretion of the contents from other organelles, namely the dense tubular system (endoplasmic reticulum) and the Golgi apparatus. Conceivably, protein secretion is a widespread property of the platelet and its organelles. In this review, we concentrate on the cell biology of the α-granule and its structure/function relationships. We both review the literature and discuss the wide array of 3-dimensional, high-resolution structural approaches that have emerged in the last few years. These have begun to reveal new and unanticipated outcomes and some of these are discussed. We are hopeful that the next several years will bring rapid advances to this field that will resolve past controversies and be clinically relevant.

Entities:  

Keywords:  Alpha-granules; microscopy; platelets, platelet release reaction; secretion

Mesh:

Year:  2016        PMID: 28010140      PMCID: PMC5627609          DOI: 10.1080/09537104.2016.1257786

Source DB:  PubMed          Journal:  Platelets        ISSN: 0953-7104            Impact factor:   3.862


  77 in total

1.  Platelet secretion: indiscriminately spewed forth or highly orchestrated?

Authors:  G C White; R Rompietti
Journal:  J Thromb Haemost       Date:  2007-10       Impact factor: 5.824

2.  Platelet secretion is kinetically heterogeneous in an agonist-responsive manner.

Authors:  Deepa Jonnalagadda; Leighton T Izu; Sidney W Whiteheart
Journal:  Blood       Date:  2012-10-18       Impact factor: 22.113

3.  Non-identity of the alpha-granules of human blood platelets with typical lysosomes.

Authors:  A Siegel; E F Lüscher
Journal:  Nature       Date:  1967-08-12       Impact factor: 49.962

4.  Quantitative proteomics analysis reveals similar release profiles following specific PAR-1 or PAR-4 stimulation of platelets.

Authors:  Thijs C van Holten; Onno B Bleijerveld; Patrick Wijten; Philip G de Groot; Albert J R Heck; Arjan D Barendrecht; Tesy H Merkx; Arjen Scholten; Mark Roest
Journal:  Cardiovasc Res       Date:  2014-04-28       Impact factor: 10.787

5.  The exocytosis of human blood platelets. A fast freezing and freeze-substitution analysis.

Authors:  E Morgenstern; K Neumann; H Patscheke
Journal:  Eur J Cell Biol       Date:  1987-04       Impact factor: 4.492

6.  Evidence that differential packaging of the major platelet granule proteins von Willebrand factor and fibrinogen can support their differential release.

Authors:  S Sehgal; B Storrie
Journal:  J Thromb Haemost       Date:  2007-07-23       Impact factor: 5.824

7.  Platelet granule exocytosis: a comparison with chromaffin cells.

Authors:  Jennifer L Fitch-Tewfik; Robert Flaumenhaft
Journal:  Front Endocrinol (Lausanne)       Date:  2013-06-26       Impact factor: 5.555

8.  Marker-free image registration of electron tomography tilt-series.

Authors:  Carlos Oscar Sanchez Sorzano; Cédric Messaoudi; Matthias Eibauer; J R Bilbao-Castro; R Hegerl; S Nickell; S Marco; J M Carazo
Journal:  BMC Bioinformatics       Date:  2009-04-27       Impact factor: 3.169

9.  A 2D-DIGE-based proteomic analysis reveals differences in the platelet releasate composition when comparing thrombin and collagen stimulations.

Authors:  Paula Vélez; Irene Izquierdo; Isaac Rosa; Ángel García
Journal:  Sci Rep       Date:  2015-02-03       Impact factor: 4.379

10.  Simulation of intrathrombus fluid and solute transport using in vivo clot structures with single platelet resolution.

Authors:  Roman S Voronov; Timothy J Stalker; Lawrence F Brass; Scott L Diamond
Journal:  Ann Biomed Eng       Date:  2013-02-20       Impact factor: 3.934

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  25 in total

1.  Haemostatic responsiveness and release of biological response modifiers following cryopreservation of platelets treated with amotosalen and ultraviolet A light.

Authors:  Nahreen Tynngård; Agneta Wikman; Michael Uhlin; Per Sandgren
Journal:  Blood Transfus       Date:  2019-07-04       Impact factor: 3.443

2.  Syntaxin 12 and COMMD3 are new factors that function with VPS33B in the biogenesis of platelet α-granules.

Authors:  Andrea L Ambrosio; Hallie P Febvre; Santiago M Di Pietro
Journal:  Blood       Date:  2022-02-10       Impact factor: 25.476

3.  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

4.  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
Journal:  Blood Adv       Date:  2018-11-13

5.  Autophagy in Platelets.

Authors:  Meenakshi Banerjee; Yunjie Huang; Madhu M Ouseph; Smita Joshi; Irina Pokrovskaya; Brian Storrie; Jinchao Zhang; Sidney W Whiteheart; Qing Jun Wang
Journal:  Methods Mol Biol       Date:  2019

6.  Salidroside inhibits platelet function and thrombus formation through AKT/GSK3β signaling pathway.

Authors:  Guangyu Wei; Xiaoqi Xu; Huan Tong; Xiamin Wang; Yuting Chen; Yangyang Ding; Sixuan Zhang; Wen Ju; Chunling Fu; Zhenyu Li; Lingyu Zeng; Kailin Xu; Jianlin Qiao
Journal:  Aging (Albany NY)       Date:  2020-04-30       Impact factor: 5.682

7.  Canalicular system reorganization during mouse platelet activation as revealed by 3D ultrastructural analysis.

Authors:  Irina D Pokrovskaya; Michael Tobin; Rohan Desai; Smita Joshi; Jeffrey A Kamykowski; Guofeng Zhang; Maria A Aronova; Sidney W Whiteheart; Richard D Leapman; Brian Storrie
Journal:  Platelets       Date:  2020-01-31       Impact factor: 3.862

8.  Structural analysis of resting mouse platelets by 3D-EM reveals an unexpected variation in α-granule shape.

Authors:  Irina Pokrovskaya; Michael Tobin; Rohan Desai; Maria A Aronova; Jeffrey A Kamykowski; Guofeng Zhang; Smita Joshi; Sidney W Whiteheart; Richard D Leapman; Brian Storrie
Journal:  Platelets       Date:  2020-08-20       Impact factor: 4.236

Review 9.  Sorting machineries: how platelet-dense granules differ from α-granules.

Authors:  Yuanying Chen; Yefeng Yuan; Wei Li
Journal:  Biosci Rep       Date:  2018-09-07       Impact factor: 3.840

10.  Lipid rafts are essential for release of phosphatidylserine-exposing extracellular vesicles from platelets.

Authors:  Hao Wei; Jean-Daniel M Malcor; Matthew T Harper
Journal:  Sci Rep       Date:  2018-07-03       Impact factor: 4.379

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