Literature DB >> 26877188

Lipids implicated in the journey of a secretory granule: from biogenesis to fusion.

Emeline Tanguy1, Ophélie Carmon2, Qili Wang1, Lydie Jeandel2, Sylvette Chasserot-Golaz1, Maité Montero-Hadjadje2, Nicolas Vitale1.   

Abstract

The regulated secretory pathway begins with the formation of secretory granules by budding from the Golgi apparatus and ends by their fusion with the plasma membrane leading to the release of their content into the extracellular space, generally following a rise in cytosolic calcium. Generation of these membrane-bound transport carriers can be classified into three steps: (i) cargo sorting that segregates the cargo from resident proteins of the Golgi apparatus, (ii) membrane budding that encloses the cargo and depends on the creation of appropriate membrane curvature, and (iii) membrane fission events allowing the nascent carrier to separate from the donor membrane. These secretory vesicles then mature as they are actively transported along microtubules toward the cortical actin network at the cell periphery. The final stage known as regulated exocytosis involves the docking and the priming of the mature granules, necessary for merging of vesicular and plasma membranes, and the subsequent partial or total release of the secretory vesicle content. Here, we review the latest evidence detailing the functional roles played by lipids during secretory granule biogenesis, recruitment, and exocytosis steps. In this review, we highlight evidence supporting the notion that lipids play important functions in secretory vesicle biogenesis, maturation, recruitment, and membrane fusion steps. These effects include regulating various protein distribution and activity, but also directly modulating membrane topology. The challenges ahead to understand the pleiotropic functions of lipids in a secretory granule's journey are also discussed. This article is part of a mini review series on Chromaffin cells (ISCCB Meeting, 2015).
© 2016 International Society for Neurochemistry.

Entities:  

Keywords:  exocytosis; lipid; membrane; microdomain; secretion; secretory granule budding

Mesh:

Substances:

Year:  2016        PMID: 26877188     DOI: 10.1111/jnc.13577

Source DB:  PubMed          Journal:  J Neurochem        ISSN: 0022-3042            Impact factor:   5.372


  13 in total

1.  Measuring Phospholipase D Enzymatic Activity Through Biochemical and Imaging Methods.

Authors:  F Philip; E E Ha; M A Seeliger; M A Frohman
Journal:  Methods Enzymol       Date:  2016-10-22       Impact factor: 1.600

2.  An endosomal syntaxin and the AP-3 complex are required for formation and maturation of candidate lysosome-related secretory organelles (mucocysts) in Tetrahymena thermophila.

Authors:  Harsimran Kaur; Daniela Sparvoli; Hiroko Osakada; Masaaki Iwamoto; Tokuko Haraguchi; Aaron P Turkewitz
Journal:  Mol Biol Cell       Date:  2017-04-05       Impact factor: 4.138

3.  Zinc transporter 2 interacts with vacuolar ATPase and is required for polarization, vesicle acidification, and secretion in mammary epithelial cells.

Authors:  Sooyeon Lee; Olivia C Rivera; Shannon L Kelleher
Journal:  J Biol Chem       Date:  2017-11-07       Impact factor: 5.157

Review 4.  Phosphatidic Acid: From Pleiotropic Functions to Neuronal Pathology.

Authors:  Emeline Tanguy; Qili Wang; Hervé Moine; Nicolas Vitale
Journal:  Front Cell Neurosci       Date:  2019-01-23       Impact factor: 5.505

5.  Protocol for electron microscopy ultrastructural localization of the fusogenic lipid phosphatidic acid on plasma membrane sheets from chromaffin cells.

Authors:  Emeline Tanguy; Tamou Thahouly; Cathy Royer; Valérie Demais; Stéphane Gasman; Sylvette Chasserot-Golaz; Nicolas Vitale
Journal:  STAR Protoc       Date:  2021-04-12

6.  A Lipidomics Approach to Measure Phosphatidic Acid Species in Subcellular Membrane Fractions Obtained from Cultured Cells.

Authors:  Nawal Kassas; Laetitia Fouillen; Stéphane Gasman; Nicolas Vitale
Journal:  Bio Protoc       Date:  2021-06-20

7.  A Phosphatidic Acid (PA) conveyor system of continuous intracellular transport from cell membrane to nucleus maintains EGF receptor homeostasis.

Authors:  Karen M Henkels; Taylor E Miller; Ramya Ganesan; Brandon A Wilkins; Kristen Fite; Julian Gomez-Cambronero
Journal:  Oncotarget       Date:  2016-07-26

8.  Spontaneous charged lipid transfer between lipid vesicles.

Authors:  Joanna L Richens; Arwen I I Tyler; Hanna M G Barriga; Jonathan P Bramble; Robert V Law; Nicholas J Brooks; John M Seddon; Oscar Ces; Paul O'Shea
Journal:  Sci Rep       Date:  2017-10-03       Impact factor: 4.379

9.  Annexin A2 Egress during Calcium-Regulated Exocytosis in Neuroendocrine Cells.

Authors:  Marion Gabel; Cathy Royer; Tamou Thahouly; Valérie Calco; Stéphane Gasman; Marie-France Bader; Nicolas Vitale; Sylvette Chasserot-Golaz
Journal:  Cells       Date:  2020-09-09       Impact factor: 6.600

Review 10.  Insulin granule biogenesis and exocytosis.

Authors:  Muhmmad Omar-Hmeadi; Olof Idevall-Hagren
Journal:  Cell Mol Life Sci       Date:  2020-11-04       Impact factor: 9.261

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.