Deletion of metal transporter Zip14 (Slc39a14) produces skeletal muscle wasting, endotoxemia, Mef2c activation and induction of miR-675 and Hspb7
Skeletal muscle represents the largest pool of body zinc, however, little is known about muscle zinc homeostasis or muscle-specific zinc functions. Zip14 (Slc39a14) was the most highly expressed zinc transporter in skeletal muscle of mice in response to LPS-induced inflammation. We compared metaboli...
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Veröffentlicht in: | Scientific reports 2020-03, Vol.10 (1), p.4050, Article 4050 |
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Zusammenfassung: | Skeletal muscle represents the largest pool of body zinc, however, little is known about muscle zinc homeostasis or muscle-specific zinc functions.
Zip14
(Slc39a14) was the most highly expressed zinc transporter in skeletal muscle of mice in response to LPS-induced inflammation. We compared metabolic parameters of skeletal muscle from global
Zip14
knockout (KO) and wild-type mice (WT). At basal steady state
Zip14
KO mice exhibited a phenotype that included muscle wasting and metabolic endotoxemia. Microarray and qPCR analysis of gastrocnemius muscle RNA revealed that ablation of
Zip14
produced increased muscle
p-Mef2c
,
Hspb7
and
miR-675-5p
expression and increased p38 activation. ChIP assays showed enhanced binding of NF-
κ
β
to the
Mef2c
promoter. In contrast, LPS-induced systemic inflammation enhanced Zip14-dependent zinc uptake by muscle, increased expression of Atrogin1 and MuRF1 and markedly reduced
MyoD
. These signatures of muscle atrophy and cachexia were not influenced by
Zip14
ablation, however. LPS-induced
miR-675-3p
and
-5p
expression was Zip14-dependent. Collectively, these results with an integrative model are consistent with a Zip14 function in skeletal muscle at steady state that supports myogenesis through suppression of metabolic endotoxemia and that
Zip14
ablation coincides with sustained activity of phosphorylated components of signaling pathways including p-Mef2c, which causes Hspb7-dependent muscle wasting. |
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ISSN: | 2045-2322 2045-2322 |
DOI: | 10.1038/s41598-020-61059-2 |