Literature DB >> 28860195

Hypothyroidism induced by loss of the manganese efflux transporter SLC30A10 may be explained by reduced thyroxine production.

Chunyi Liu1, Steven Hutchens1, Thomas Jursa2, William Shawlot3, Elena V Polishchuk4, Roman S Polishchuk4, Beth K Dray5, Andrea C Gore1, Michael Aschner6, Donald R Smith2, Somshuvra Mukhopadhyay7.   

Abstract

SLC30A10 and SLC39A14 are manganese efflux and influx transporters, respectively. Loss-of-function mutations in genes encoding either transporter induce hereditary manganese toxicity. Patients have elevated manganese in the blood and brain and develop neurotoxicity. Liver manganese is increased in patients lacking SLC30A10 but not SLC39A14. These organ-specific changes in manganese were recently recapitulated in knockout mice. Surprisingly, Slc30a10 knockouts also had elevated thyroid manganese and developed hypothyroidism. To determine the mechanisms of manganese-induced hypothyroidism and understand how SLC30A10 and SLC39A14 cooperatively mediate manganese detoxification, here we produced Slc39a14 single and Slc30a10/Slc39a14 double knockout mice and compared their phenotypes with that of Slc30a10 single knockouts. Compared with wild-type controls, Slc39a14 single and Slc30a10/Slc39a14 double knockouts had higher manganese levels in the blood and brain but not in the liver. In contrast, Slc30a10 single knockouts had elevated manganese levels in the liver as well as in the blood and brain. Furthermore, SLC30A10 and SLC39A14 localized to the canalicular and basolateral domains of polarized hepatic cells, respectively. Thus, transport activities of both SLC39A14 and SLC30A10 are required for hepatic manganese excretion. Compared with Slc30a10 single knockouts, Slc39a14 single and Slc30a10/Slc39a14 double knockouts had lower thyroid manganese levels and normal thyroid function. Moreover, intrathyroid thyroxine levels of Slc30a10 single knockouts were lower than those of controls. Thus, the hypothyroidism phenotype of Slc30a10 single knockouts is induced by elevated thyroid manganese, which blocks thyroxine production. These findings provide new insights into the mechanisms of manganese detoxification and manganese-induced thyroid dysfunction.
© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  SLC30; SLC39; cation diffusion facilitator; excretion; liver; manganese; metal homeostasis; parkinsonism; thyroid; transporter

Mesh:

Substances:

Year:  2017        PMID: 28860195      PMCID: PMC5633123          DOI: 10.1074/jbc.M117.804989

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  63 in total

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2.  Hepatic metal ion transporter ZIP8 regulates manganese homeostasis and manganese-dependent enzyme activity.

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3.  Interleukin-6 regulates the zinc transporter Zip14 in liver and contributes to the hypozincemia of the acute-phase response.

Authors:  Juan P Liuzzi; Louis A Lichten; Seth Rivera; Raymond K Blanchard; Tolunay Beker Aydemir; Mitchell D Knutson; Tomas Ganz; Robert J Cousins
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4.  A mouse knockout library for secreted and transmembrane proteins.

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Journal:  Nat Biotechnol       Date:  2010-06-20       Impact factor: 54.908

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Journal:  Biol Reprod       Date:  2011-07-20       Impact factor: 4.285

6.  Structure-function analysis of a novel member of the LIV-1 subfamily of zinc transporters, ZIP14.

Authors:  K M Taylor; H E Morgan; A Johnson; R I Nicholson
Journal:  FEBS Lett       Date:  2005-01-17       Impact factor: 4.124

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Authors:  A M Buthieau; N Autissier
Journal:  C R Seances Soc Biol Fil       Date:  1977

8.  Autosomal-Recessive Intellectual Disability with Cerebellar Atrophy Syndrome Caused by Mutation of the Manganese and Zinc Transporter Gene SLC39A8.

Authors:  Kym M Boycott; Chandree L Beaulieu; Kristin D Kernohan; Ola H Gebril; Aziz Mhanni; Albert E Chudley; David Redl; Wen Qin; Sarah Hampson; Sébastien Küry; Martine Tetreault; Erik G Puffenberger; James N Scott; Stéphane Bezieau; André Reis; Steffen Uebe; Johannes Schumacher; Robert A Hegele; D Ross McLeod; Marina Gálvez-Peralta; Jacek Majewski; Vincent T Ramaekers; Daniel W Nebert; A Micheil Innes; Jillian S Parboosingh; Rami Abou Jamra
Journal:  Am J Hum Genet       Date:  2015-12-03       Impact factor: 11.025

9.  Early Postnatal Manganese Exposure Causes Lasting Impairment of Selective and Focused Attention and Arousal Regulation in Adult Rats.

Authors:  Stephane A Beaudin; Barbara J Strupp; Myla Strawderman; Donald R Smith
Journal:  Environ Health Perspect       Date:  2016-07-06       Impact factor: 9.031

10.  Shiga toxin-binding site for host cell receptor GPP130 reveals unexpected divergence in toxin-trafficking mechanisms.

Authors:  Somshuvra Mukhopadhyay; Brendan Redler; Adam D Linstedt
Journal:  Mol Biol Cell       Date:  2013-06-12       Impact factor: 4.138

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  32 in total

1.  Manganese transport and toxicity in polarized WIF-B hepatocytes.

Authors:  Khristy J Thompson; Jennifer Hein; Andrew Baez; Jose Carlo Sosa; Marianne Wessling-Resnick
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2018-05-24       Impact factor: 4.052

2.  Functional analyses of the UDP-galactose transporter SLC35A2 using the binding of bacterial Shiga toxins as a novel activity assay.

Authors:  Danyang Li; Somshuvra Mukhopadhyay
Journal:  Glycobiology       Date:  2019-06-01       Impact factor: 4.313

3.  Small Molecule Modifiers of In Vitro Manganese Transport Alter Toxicity In Vivo.

Authors:  Tanara V Peres; Kyle J Horning; Julia Bornhorst; Tanja Schwerdtle; Aaron B Bowman; Michael Aschner
Journal:  Biol Trace Elem Res       Date:  2018-09-28       Impact factor: 3.738

4.  The solute carriers ZIP8 and ZIP14 regulate manganese accumulation in brain microvascular endothelial cells and control brain manganese levels.

Authors:  Brittany L Steimle; Frances M Smith; Daniel J Kosman
Journal:  J Biol Chem       Date:  2019-11-07       Impact factor: 5.157

5.  The intestinal metal transporter ZIP14 maintains systemic manganese homeostasis.

Authors:  Ivo Florin Scheiber; Yuze Wu; Shannon Elizabeth Morgan; Ningning Zhao
Journal:  J Biol Chem       Date:  2019-04-26       Impact factor: 5.157

6.  Novel founder intronic variant in SLC39A14 in two families causing Manganism and potential treatment strategies.

Authors:  Lance H Rodan; Marissa Hauptman; Alissa M D'Gama; Anita E Qualls; Siqi Cao; Karin Tuschl; Fatma Al-Jasmi; Jozef Hertecant; Susan J Hayflick; Marianne Wessling-Resnick; Edward T Yang; Gerard T Berry; Andrea Gropman; Alan D Woolf; Pankaj B Agrawal
Journal:  Mol Genet Metab       Date:  2018-04-06       Impact factor: 4.797

7.  SLC39A14 deficiency alters manganese homeostasis and excretion resulting in brain manganese accumulation and motor deficits in mice.

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Journal:  Proc Natl Acad Sci U S A       Date:  2018-02-07       Impact factor: 11.205

8.  SLC30A10 transporter in the digestive system regulates brain manganese under basal conditions while brain SLC30A10 protects against neurotoxicity.

Authors:  Cherish A Taylor; Steven Hutchens; Chunyi Liu; Thomas Jursa; William Shawlot; Michael Aschner; Donald R Smith; Somshuvra Mukhopadhyay
Journal:  J Biol Chem       Date:  2018-12-17       Impact factor: 5.157

9.  Generation and Validation of Tissue-Specific Knockout Strains for Toxicology Research.

Authors:  Cherish A Taylor; William Shawlot; Jin Xiang Ren; Somshuvra Mukhopadhyay
Journal:  Curr Protoc Toxicol       Date:  2019-09

10.  ZIP14 is degraded in response to manganese exposure.

Authors:  Khristy J Thompson; Marianne Wessling-Resnick
Journal:  Biometals       Date:  2019-09-20       Impact factor: 2.949

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