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Crossroads Between Membrane Trafficking Machinery and Copper Homeostasis in the Nerve System

Overview
Journal Open Biol
Date 2021 Dec 1
PMID 34847776
Citations 13
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Abstract

Imbalanced copper homeostasis and perturbation of membrane trafficking are two common symptoms that have been associated with the pathogenesis of neurodegenerative and neurodevelopmental diseases. Accumulating evidence from biophysical, cellular and studies suggest that membrane trafficking orchestrates both copper homeostasis and neural functions-however, a systematic review of how copper homeostasis and membrane trafficking interplays in neurons remains lacking. Here, we summarize current knowledge of the general trafficking itineraries for copper transporters and highlight several critical membrane trafficking regulators in maintaining copper homeostasis. We discuss how membrane trafficking regulators may alter copper transporter distribution in different membrane compartments to regulate intracellular copper homeostasis. Using Parkinson's disease and MEDNIK as examples, we further elaborate how misregulated trafficking regulators may interplay parallelly or synergistically with copper dyshomeostasis in devastating pathogenesis in neurodegenerative diseases. Finally, we explore multiple unsolved questions and highlight the existing challenges to understand how copper homeostasis is modulated through membrane trafficking.

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References
1.
Fu X, Zhang Y, Jiang W, Monnot A, Bates C, Zheng W . Regulation of copper transport crossing brain barrier systems by Cu-ATPases: effect of manganese exposure. Toxicol Sci. 2014; 139(2):432-51. PMC: 4064014. DOI: 10.1093/toxsci/kfu048. View

2.
Wandinger-Ness A, Zerial M . Rab proteins and the compartmentalization of the endosomal system. Cold Spring Harb Perspect Biol. 2014; 6(11):a022616. PMC: 4413231. DOI: 10.1101/cshperspect.a022616. View

3.
Das S, Maji S, Ruturaj , Bhattacharya I, Saha T, Naskar N . Retromer retrieves the Wilson disease protein ATP7B from endolysosomes in a copper-dependent manner. J Cell Sci. 2020; 133(24). PMC: 7611186. DOI: 10.1242/jcs.246819. View

4.
Jain S, Farias G, Bonifacino J . Polarized sorting of the copper transporter ATP7B in neurons mediated by recognition of a dileucine signal by AP-1. Mol Biol Cell. 2014; 26(2):218-28. PMC: 4294670. DOI: 10.1091/mbc.E14-07-1177. View

5.
Perrone M, Caroccia N, Genovese I, Missiroli S, Modesti L, Pedriali G . The role of mitochondria-associated membranes in cellular homeostasis and diseases. Int Rev Cell Mol Biol. 2020; 350:119-196. DOI: 10.1016/bs.ircmb.2019.11.002. View