Selenium deficiency-induced redox imbalance leads to metabolic reprogramming and inflammation in the liver

Autor: Jing Li, Shuang Li, Chaohua Tang, Tengfei Zhan, Qingyu Zhao, Kai Zhang, Xiaoqing Guo, Junmin Zhang, Yunsheng Han
Jazyk: angličtina
Rok vydání: 2020
Předmět:
ACAA2
3-ketoacyl-CoA thiolase mitochondrial

Swine
IL1R1
IL-1β receptor

PLCG2
1-phosphatidylinositol 4
5-bisphosphate phosphodiesterase gamma-2

Biochemistry
0302 clinical medicine
Selenium deficiency
ceRNA
competing endogenous RNA

GSH
glutathione

Glycolysis
ANPEP
aminopeptidase N

KLF15
krueppel-like factor 15

lcsh:QH301-705.5
GSSG
oxidized glutathione

SAM
S-adenosylmethionine

TG
triglycerides

PS
phosphatidylserine

Warburg effect
TGF-β
transfer growth factor β

Se-D
Se deficient

Sed-7p
sedoheptulose 7-phosphate

PDK4
pyruvate dehydrogenase kinase isozyme 4

PLPP3
phosphatidate phosphatase 3

PKLR
pyruvate kinase

lcsh:Medicine (General)
Redox imbalance
PE
phosphatidylethanolamine

ICP-MS
inductively coupled plasma mass spectrometry

03 medical and health sciences
Selenium
NADH
nicotinamide adenine dinucleotide

Se-A
Se adequate

CPT2
carnitine palmitoyltransferase 2

NF-κB
nuclear factor κ-light-chain-enhancer’ of activated B-cells

MDA
malondialdehyde

PGD
6-phosphogluconate dehydrogenase

PAPSS2
bifunctional 3′-phosphoadenosine5′-phosphosulfate synthase 2

ISG15
ubiquitin-like protein ISG15

medicine.disease
IL
interleukin

Citric acid cycle
030104 developmental biology
TKFC
dihydroxyacetone kinase

SELENO
selenoprotein

Diabetes Mellitus
Type 2

ACOX1
acyl-CoA oxidase 1

CAT
catalase

DGKZ
diacylglycerol kinase zeta

030217 neurology & neurosurgery
0301 basic medicine
ACSL5
long-chain-fatty-acid--CoA ligase 5-like

Clinical Biochemistry
FASN
fatty acid synthase

SEPHS2
selenophosphate synthetase 2

GPX
glutathione peroxidase

PG
phosphatidylglycerol

GST
glutathione S-transferase

GK
glycerol kinase

PC
phosphatidylcholine

TXNRD
thioredoxin reductase

TNF-α
tumor necrosis factor α

MSRB
methionine-R-sulfoxide

lcsh:R5-920
ncRNA
non-coding RNA

RIG-1
antiviral innate immune response receptor RIG-I

Chemistry
Metabolic reprogramming
TRX
thioredoxin

Liver
Ribu-5P
ribose-5-phosphate

GPAM
glycerol-3-phosphate acyltransferase 1

Oxidation-Reduction
TCA
tricarboxylic acid cycle

DG
diglycerides

Research Paper
SOD
super oxide dismutase

ATP
adenosine triphosphate

CL
cardiolipin

Mx1
interferon-induced GTP-binding protein Mx1

PPP
pentose phosphate pathway

Cysthi
l-Cystathionine

PI
phosphatidylinositol

Se
selenium

ROS
reactive oxygen species

IFIT
interferon-induced protein with tetratricopeptide repeats

medicine
Metabolome
Animals
Cer
ceramides

Inflammation
PCA
principal component analysis

2-OG
Oxoglutaric acid

Catabolism
Organic Chemistry
SAH
S-adenosylhomocysteine

Lipid metabolism
NADPH
nicotinamide adenine dinucleotide phosphate

ADP
adenosine diphosphate

GLUD1
glutamate dehydrogenase 1

Glutamine
AMPK
AMP-activated protein kinase

lcsh:Biology (General)
AMP
adenosine monophosphate

FA
fatty acids

CPT1A
carnitine O-palmitoyltransferase 1

HIF-1α
hypoxia-inducible factor 1α

Pig liver
CTH
cystathionase

GCLC
glutamate-cysteine ligase catalytic subunit
Zdroj: Redox Biology
Redox Biology, Vol 36, Iss, Pp 101519-(2020)
ISSN: 2213-2317
Popis: Selenium (Se) intake disequilibrium is associated with many human diseases (e.g., Keshan disease and type 2 diabetes). To understand the mechanism of Se deficiency-induced hepatic pathogenesis, a pure line pig model was established by feeding a diet with either 0.07 mg/kg Se or 0.3 mg/kg Se for 16 weeks. The hepatic metabolome, lipidome, global proteome, and whole transcriptome were analyzed. Se deficiency causes a redox imbalance via regulation of selenoproteins at both the mRNA and protein level, and blocks the glutathione anti-oxidant system along with enhanced glutathione synthesis and catabolism. The Warburg effect was observed by enhanced activation of the glycolysis and phosphate pentose pathways. The tricarboxylic acid cycle was dysfunctional since the preliminary metabolites decreased and shifted from using glycolysis origin substrates to a glutamine catabolism-preferred metabolic mode. The reprogrammed central carbon metabolism induced widely restrained lipid synthesis. In addition, a Se deficiency initiated inflammation by activating the NF-κB pathway through multiple mechanisms. These results identified the potential metabolic vulnerability of the liver in response to a Se deficiency-induced redox imbalance and possible therapeutic or intervention targets.
Graphical abstract Image 1
Highlights • Se deficiency elevates liver ROS via selenoprotein down-regulation and blocks GSH system. • The Warburg effect was observed and the TCA cycle shifted to glutamine catabolism. • Reprogrammed central carbon metabolism widely restrains hepatic lipid synthesis. • Se deficiency activates the NF–κB signaling pathway through multiple mechanisms.
Databáze: OpenAIRE