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Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice

MEdiator of cell MOtility1 (MEMO1) is a ubiquitously expressed redox protein involved in extracellular ligand-induced cell signaling. We previously reported that inducible whole-body Memo1 KO (cKO) mice displayed a syndrome of premature aging and disturbed mineral metabolism partially recapitulating...

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Autores principales: Moor, Matthias B., Ramakrishnan, Suresh K., Legrand, Finola, Bachtler, Matthias, Koesters, Robert, Hynes, Nancy E., Pasch, Andreas, Bonny, Olivier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7380890/
https://www.ncbi.nlm.nih.gov/pubmed/32706793
http://dx.doi.org/10.1371/journal.pone.0236361
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author Moor, Matthias B.
Ramakrishnan, Suresh K.
Legrand, Finola
Bachtler, Matthias
Koesters, Robert
Hynes, Nancy E.
Pasch, Andreas
Bonny, Olivier
author_facet Moor, Matthias B.
Ramakrishnan, Suresh K.
Legrand, Finola
Bachtler, Matthias
Koesters, Robert
Hynes, Nancy E.
Pasch, Andreas
Bonny, Olivier
author_sort Moor, Matthias B.
collection PubMed
description MEdiator of cell MOtility1 (MEMO1) is a ubiquitously expressed redox protein involved in extracellular ligand-induced cell signaling. We previously reported that inducible whole-body Memo1 KO (cKO) mice displayed a syndrome of premature aging and disturbed mineral metabolism partially recapitulating the phenotype observed in Klotho or Fgf23-deficient mouse models. Here, we aimed at delineating the contribution of systemic mineral load on the Memo1 cKO mouse phenotype. We attempted to rescue the Memo1 cKO phenotype by depleting phosphate or vitamin D from the diet, but did not observe any effect on survival. However, we noticed that, by contrast to Klotho or Fgf23-deficient mouse models, Memo1 cKO mice did not present any soft-tissue calcifications and displayed even a decreased serum calcification propensity. We identified higher serum magnesium levels as the main cause of protection against calcifications. Expression of genes encoding intestinal and renal magnesium channels and the regulator epidermal growth factor were increased in Memo1 cKO. In order to check whether magnesium reabsorption in the kidney alone was driving the higher magnesemia, we generated a kidney-specific Memo1 KO (kKO) mouse model. Memo1 kKO mice also displayed higher magnesemia and increased renal magnesium channel gene expression. Collectively, these data identify MEMO1 as a novel regulator of magnesium homeostasis and systemic calcification propensity, by regulating expression of the main magnesium channels.
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spelling pubmed-73808902020-08-04 Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice Moor, Matthias B. Ramakrishnan, Suresh K. Legrand, Finola Bachtler, Matthias Koesters, Robert Hynes, Nancy E. Pasch, Andreas Bonny, Olivier PLoS One Research Article MEdiator of cell MOtility1 (MEMO1) is a ubiquitously expressed redox protein involved in extracellular ligand-induced cell signaling. We previously reported that inducible whole-body Memo1 KO (cKO) mice displayed a syndrome of premature aging and disturbed mineral metabolism partially recapitulating the phenotype observed in Klotho or Fgf23-deficient mouse models. Here, we aimed at delineating the contribution of systemic mineral load on the Memo1 cKO mouse phenotype. We attempted to rescue the Memo1 cKO phenotype by depleting phosphate or vitamin D from the diet, but did not observe any effect on survival. However, we noticed that, by contrast to Klotho or Fgf23-deficient mouse models, Memo1 cKO mice did not present any soft-tissue calcifications and displayed even a decreased serum calcification propensity. We identified higher serum magnesium levels as the main cause of protection against calcifications. Expression of genes encoding intestinal and renal magnesium channels and the regulator epidermal growth factor were increased in Memo1 cKO. In order to check whether magnesium reabsorption in the kidney alone was driving the higher magnesemia, we generated a kidney-specific Memo1 KO (kKO) mouse model. Memo1 kKO mice also displayed higher magnesemia and increased renal magnesium channel gene expression. Collectively, these data identify MEMO1 as a novel regulator of magnesium homeostasis and systemic calcification propensity, by regulating expression of the main magnesium channels. Public Library of Science 2020-07-24 /pmc/articles/PMC7380890/ /pubmed/32706793 http://dx.doi.org/10.1371/journal.pone.0236361 Text en © 2020 Moor et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Moor, Matthias B.
Ramakrishnan, Suresh K.
Legrand, Finola
Bachtler, Matthias
Koesters, Robert
Hynes, Nancy E.
Pasch, Andreas
Bonny, Olivier
Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title_full Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title_fullStr Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title_full_unstemmed Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title_short Elevated serum magnesium lowers calcification propensity in Memo1-deficient mice
title_sort elevated serum magnesium lowers calcification propensity in memo1-deficient mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7380890/
https://www.ncbi.nlm.nih.gov/pubmed/32706793
http://dx.doi.org/10.1371/journal.pone.0236361
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