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      Golgi pH, Ion and Redox Homeostasis: How Much Do They Really Matter?

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          Abstract

          Exocytic and endocytic compartments each have their own unique luminal ion and pH environment that is important for their normal functioning. A failure to maintain this environment – the loss of homeostasis – is not uncommon. In the worst case, all the main Golgi functions, including glycosylation, membrane trafficking and protein sorting, can be perturbed. Several factors contribute to Golgi homeostasis. These include not only ions such as H +, Ca 2+, Mg 2+, Mn 2+, but also Golgi redox state and nitric oxide (NO) levels, both of which are dependent on the oxygen levels in the cells. Changes to any one of these factors have consequences on Golgi functions, the nature of which can be dissimilar or similar depending upon the defects themselves. For example, altered Golgi pH homeostasis gives rise to Cutis laxa disease, in which glycosylation and membrane trafficking are both affected, while altered Ca 2+ homeostasis due to the mutated SCPA1 gene in Hailey–Hailey disease, perturbs various protein sorting, proteolytic cleavage and membrane trafficking events in the Golgi. This review gives an overview of the molecular machineries involved in the maintenance of Golgi ion, pH and redox homeostasis, followed by a discussion of the organelle dysfunction and disease that frequently result from their breakdown. Congenital disorders of glycosylation (CDGs) are discussed only when they contribute directly to Golgi pH, ion or redox homeostasis. Current evidence emphasizes that, rather than being mere supporting factors, Golgi pH, ion and redox homeostasis are in fact key players that orchestrate and maintain all Golgi functions.

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          Fusion of Enveloped Viruses in Endosomes

          To initiate infection, enveloped viruses must fuse with a cell membrane, a process mediated by a dedicated viral fusion protein. To date, these proteins group into three basic structural classes. Most require priming (via a protease) to prepare them to respond to a fusion‐triggering signal. Known fusion triggers include receptors, low pH and proteases (and combinations thereof). Here, we provide an update on viral fusion protein priming and triggering, with a focus on virus fusion in endosomes.
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            Calcium pumps in health and disease.

            Ca2+-ATPases (pumps) are key actors in the regulation of Ca2+ in eukaryotic cells and are thus essential to the correct functioning of the cell machinery. They have high affinity for Ca2+ and can efficiently regulate it down to very low concentration levels. Two of the pumps have been known for decades (the SERCA and PMCA pumps); one (the SPCA pump) has only become known recently. Each pump is the product of a multigene family, the number of isoforms being further increased by alternative splicing of the primary transcripts. The three pumps share the basic features of the catalytic mechanism but differ in a number of properties related to tissue distribution, regulation, and role in the cellular homeostasis of Ca2+. The molecular understanding of the function of the pumps has received great impetus from the solution of the three-dimensional structure of one of them, the SERCA pump. These spectacular advances in the structure and molecular mechanism of the pumps have been accompanied by the emergence and rapid expansion of the topic of pump malfunction, which has paralleled the rapid expansion of knowledge in the topic of Ca2+-signaling dysfunction. Most of the pump defects described so far are genetic: when they are very severe, they produce gross and global disturbances of Ca2+ homeostasis that are incompatible with cell life. However, pump defects may also be of a type that produce subtler, often tissue-specific disturbances that affect individual components of the Ca2+-controlling and/or processing machinery. They do not bring cells to immediate death but seriously compromise their normal functioning.
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              Structures and mechanisms of glycosyltransferases

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                Author and article information

                Contributors
                Journal
                Front Cell Dev Biol
                Front Cell Dev Biol
                Front. Cell Dev. Biol.
                Frontiers in Cell and Developmental Biology
                Frontiers Media S.A.
                2296-634X
                11 June 2019
                2019
                : 7
                : 93
                Affiliations
                Faculty of Biochemistry and Molecular Medicine, University of Oulu , Oulu, Finland
                Author notes

                Edited by: Vladimir Lupashin, University of Arkansas for Medical Sciences, United States

                Reviewed by: Martin Lowe, The University of Manchester, United Kingdom; Francois Foulquier, Université de Lille, France; Daniel Ungar, University of York, United Kingdom

                *Correspondence: Sakari Kellokumpu, sakari.kellokumpu@ 123456oulu.fi

                This article was submitted to Membrane Traffic, a section of the journal Frontiers in Cell and Developmental Biology

                Article
                10.3389/fcell.2019.00093
                6584808
                31263697
                beb3e7db-3144-42fb-8c1a-1849aef1b137
                Copyright © 2019 Kellokumpu.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 21 March 2019
                : 16 May 2019
                Page count
                Figures: 2, Tables: 0, Equations: 0, References: 180, Pages: 15, Words: 0
                Categories
                Cell and Developmental Biology
                Hypothesis and Theory

                homeostasis,golgi ph,golgi redox state,glycosylation,protein sorting,cancer

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