Selenium and Metabolic Disorders: An Emphasis on Type 2 Diabetes Risk
Abstract
:1. Introduction
Selenoprotein Gene | Abbreviation | Function(s) |
---|---|---|
15 kDa-selenoprotein | Sep15 | Protein folding |
Iodothrionine Deiodinase 1–3 | Dio1–3 | Thyroid hormone activity regulation |
Glutathione Peroxidase 1–4, 6 | GPx1–6 | Hydroperoxide/phospholipid peroxide reduction |
Methionine-R-Sulfoxide Reductase 1 | MsrB1 | Reduces oxidized methionine residues |
Selenoprotein H | SelH | Genome maintenace |
Selenoprotein I | SelI | Unknown |
Selenoprotein K | SelK | ER-associated degradation; inflammation |
Selenoprotein M | SelM | Ca2+ homeostasis |
Selenoprotein N | SelN | Muscle development |
Selenoprotein O | SelO | Unknown |
Selenoprotein P | Sepp1 | Selenium transport |
Selenoprotein S | SelS | ER-associated degradation; inflammation |
Selenophosphate Synthase 2 | SPS2 | Selenoprotein biosynthesis |
Selenoprotein T | SelT | Ca2+ homeostasis; neuroendocrine secretion |
Thioredoxin Reducase 1–3 | TrxR1–3 | Disulfide bond reduction |
Selenoprotein V | SelV | Unknown |
Selenoprotein W | SelW | Unknown |
2. Forms of Selenium
3. Selenoprotein Synthesis
4. Selenium and Metabolic Disease
5. Selenoproteins in Metabolic Disease
5.1. Glutathione Peroxidase 1
5.2. Selenoprotein P
5.3. Selenoprotein M
5.4. Iodothryonine Deiodinase 2
5.5. Selenoprotein T
5.6. Selenoprotein S
6. Selenium Metabolism in Metabolic Disease
7. Sex Differences in Se and Metabolic Disease
8. Final Remarks
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
α-MSH | α-melanocyte stimulating hormone |
Agrp | Agouti-related peptide |
ARE | Antioxidant response element |
Cth | Cystathione γ-lyase |
Cys | Cysteine |
Dio | Iodothyronine deiodinases |
EFSec | Sec-specific elongation factor |
ER | Endoplasmic reticulum |
ERAD | ER-associated degradation |
GPx1 | Glutathione peroxidase 1 |
GPx4 | Glutathione peroxidase 4 |
IL | Interleukin |
JNK | c-Jun N-terminal kinase |
LXR | Liver X-receptor |
Met | Methionine |
NF-κB | Nuclear factor-kappaB |
NMD | nonsense-mediated decay |
NPY | Neuropeptide Y |
PACAP | Pituitary adenylate cyclase |
PDX1 | pancreatic duodenal homeobox-1 |
PSTK | Phosphoseryl-tRNA kinase |
PTEN | Phosphatase and tensin homolog |
PTP | Protein tyrosine phosphatase |
rT3 | Reverse T3 |
RXR | Retinoid X-receptor |
SBP2 | SECIS binding protein 2 |
Scly | Selenocysteine lyase |
Se | Selenium |
Sec | Selenocysteine |
Sec-tRNA[Ser]Sec | Sec tRNA |
SECIS | Sec insertion sequence |
SelM | Selenoprotein M |
Sepp1 | Selenoprotein P |
SelS | Selenoprotein S |
SelT | Selenoprotein T |
SeMet | Selenomethionine |
SPS2 | Selenophosphate synthetase 2 |
T2D | Type 2 diabetes |
T3 | l-3, 5, 3′ triiodothyronine |
T4 | thyroxine or 5, 5′ tetraiodothyronine |
TNF | Tumor necrosis factor |
TrxR1 | Thioredoxin reductase 1 |
TrxR3 | Thioredoxin reductase 3 |
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Ogawa-Wong, A.N.; Berry, M.J.; Seale, L.A. Selenium and Metabolic Disorders: An Emphasis on Type 2 Diabetes Risk. Nutrients 2016, 8, 80. https://doi.org/10.3390/nu8020080
Ogawa-Wong AN, Berry MJ, Seale LA. Selenium and Metabolic Disorders: An Emphasis on Type 2 Diabetes Risk. Nutrients. 2016; 8(2):80. https://doi.org/10.3390/nu8020080
Chicago/Turabian StyleOgawa-Wong, Ashley N., Marla J. Berry, and Lucia A. Seale. 2016. "Selenium and Metabolic Disorders: An Emphasis on Type 2 Diabetes Risk" Nutrients 8, no. 2: 80. https://doi.org/10.3390/nu8020080
APA StyleOgawa-Wong, A. N., Berry, M. J., & Seale, L. A. (2016). Selenium and Metabolic Disorders: An Emphasis on Type 2 Diabetes Risk. Nutrients, 8(2), 80. https://doi.org/10.3390/nu8020080