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Divalent metal transporter 1 knock-down modulates il-1β mediated pancreatic beta-cell pro-apoptotic signaling pathways through the autophagic machinery

  • Taewook Kang
  • , Honggang Huang
  • , Thomas Mandrup-Poulsen
  • , Martin R. Larsen*
  • *Kontaktforfatter
  • Københavns Universitet
  • Danish Diabetes Academy

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningpeer review

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Abstract

Pro-inflammatory cytokines promote cellular iron-import through enhanced divalent metal transporter-1 (DMT1) expression in pancreatic β-cells, consequently cell death. Inhibition of β-cell iron-import by DMT1 silencing protects against apoptosis in animal models of diabetes. However, how alterations of signaling networks contribute to the protective action of DMT1 knock-down is unknown. Here, we performed phosphoproteomics using our sequential enrichment strategy of mRNA, protein, and phosphopeptides, which enabled us to explore the concurrent molecular events in the same set of wildtype and DMT1-silenced β-cells during IL-1β exposure. Our findings reveal new phosphosites in the IL-1β-induced proteins that are clearly reverted by DMT1 silencing towards their steady-state levels. We validated the levels of five novel phosphosites of the potential protective proteins using parallel reaction monitoring. We also confirmed the inactivation of autophagic flux that may be relevant for cell survival induced by DMT1 silencing during IL-1β exposure. Additionally, the potential protective proteins induced by DMT1 silencing were related to insulin secretion that may lead to improving β-cell functions upon exposure to IL-1β. This global profiling has shed light on the signal transduction pathways driving the protection against inflammation-induced cell death in β-cells after DMT1 silencing.

OriginalsprogEngelsk
Artikelnummer8013
TidsskriftInternational Journal of Molecular Sciences
Vol/bind22
Udgave nummer15
Antal sider25
ISSN1422-0067
DOI
StatusUdgivet - 1. aug. 2021

Bibliografisk note

Funding Information:
This study was supported by the Novo Nordisk Foundation (M.R.L.) and the Villum Center for Bioanalytical Sciences at University of Southern Denmark (M.R.L.). T.K. was supported by the Danish Diabetes Academy (Grant number: NNF17SA0031406).

Funding Information:
Center for Bioanalytical Sciences at University of Southern Denmark (M.R.L.). T.K. was supported by the Danish Diabetes ?cademy (Grant number: NNF17S?0031406).

Funding Information:
Funding: This study was supported by the Novo Nordisk Foundation (M.R.L.) and the Villum

Publisher Copyright:
© 2021 by the authors. Licensee MDPI, Basel, Switzerland.

Finansiering

This study was supported by the Novo Nordisk Foundation (M.R.L.) and the Villum Center for Bioanalytical Sciences at University of Southern Denmark (M.R.L.). T.K. was supported by the Danish Diabetes Academy (Grant number: NNF17SA0031406). Center for Bioanalytical Sciences at University of Southern Denmark (M.R.L.). T.K. was supported by the Danish Diabetes ?cademy (Grant number: NNF17S?0031406). Funding: This study was supported by the Novo Nordisk Foundation (M.R.L.) and the Villum

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