miRNA Signature in NAFLD: A Turning Point for a Non-Invasive Diagnosis
Abstract
:1. Introduction
2. miRNAs
Exosomal miRNAs
3. miRNA Signature in NAFLD
3.1. miR-122
3.2. miR-192
3.3. miR-375
4. miRNA Signature in Progressive NAFLD
4.1. miR-33a and miR-33b
4.2. miR-34a
4.3. miR-451
4.4. miR-155
5. Role of miRNAs in Adipose Tissue and Gut Homeostasis
6. miRNAs in Liver Fibrosis and HCC
6.1. miR-15 and miR-16
6.2. miR-34
6.3. miR-21
6.4. miR-221/222
7. miRNA Hereditability in NAFLD
8. Epigenetic Therapies Which Target miRNAs
9. Single Nucleotide Polymorphism Can Modify miRNA Target Sites
10. Concluding Remarks
Author Contributions
Funding
Conflicts of Interest
Abbreviations
NAFLD | Nonalcoholic Fatty Liver Disease |
NASH | Nonalcoholic Steatohepatitis |
HCC | Hepatocellular Carcinoma |
HBV | Viral Hepatitis B |
HCV | Viral Hepatitis C |
T2DM | Type 2 Diabetes Mellitus |
VAT | Visceral Adipose Tissue |
ALT | Alanine Aminotransferase |
AST | Aspartate Aminotransferase |
BMI | Body Mass Index |
NAS | NAFLD Activity Score |
FIB 4 | Fibrosis 4 |
TNM | Tumor, Node and Metastasis |
SNP | Single Nucleotide Polymorphism |
PNPLA3 | Patatin-like phospholipase domain containing-3 |
TM6SF2 | Transmembrane 6 superfamily member 2 |
MBOAT7/TMC4 | Membrane bound O-acyltransferase domain containing 7-Transmembrane channel-like 4 |
HFD | High Fat Diet |
MCD | Methionine Choline-deficient Diet |
TAA | Thioacetamide |
VLDL | Very Low-Density Lipoprotein |
HDL | High Density Lipoprotein |
DSS | Dextran Sulfate Sodium |
CCl4 | Carbon Tetrachloride |
UDCA | Ursodeoxycholic Acid |
OCA | Obeticholic Acid |
FFA | Free Fatty Acid |
KCs | Kupffer cells |
CDCA | Chenodeoxycholic Acid |
HSCs | Hepatic Stellate Cells |
ATM | Adipose Tissue Macrophages |
IEC | Intestinal Epithelial Cell |
ECM | Extracellular Matrix |
SREBP | Sterol Regulatory Element-binding Protein |
miRNAs | microRNAs |
exomiRs | Exosomal miRNAs |
LPS | Lipopolysaccharides |
TLRs | Toll-like receptors |
NF-κB | Nuclear Factor Kappa-Light-Chain-Enhancer of Activated B Cells |
PPARα | Peroxisome Proliferator Activated Receptor-alpha |
PPARγ | Peroxisome Proliferator Activated Receptor-gamma |
PTEN | Phosphatase and Tensin Homolog |
ACLS-1 | Acyl-CoA Synthetase 1 Long-chain Family Member 1 |
TGF-β/Smad | Transforming Growth Factor-Beta/Suppressor of Mothers Against Decapentaplegic Miscellaneous |
AMPK | AMP-activated Protein Kinase |
AdipoR2 | Adiponectin Receptor 2 |
ATG7 | Autophagy-related Gene 7 |
ATG12-5 | Autophagy-related Gene 12-5 |
AEG-1 | Astrocyte Elevated Gene-1 |
YAP1 | Yes-associated Protein |
SIRT1 | Sirtuin 1 |
HNF4α | Hepatocyte Nuclear Factor 4 Alpha |
IL-6 | Interleukin 6 |
IL-8 | Interleukin 8 |
IL-10 | Interleukin 10 |
IL-12p40 | p40 Subunit of Interleukin 12 |
ZO-1 | Zonula Occludens-1 |
UTR | Untranslated region |
IL-6/STAT3 | Interleukin-6/Signal Transducer and Activator of Transcription 3 |
HNF6 | Hepatocyte Nuclear Factor 6 |
CK-18 | Cytokeratin-18 |
TNF-α | Tumor Necrosis Factor-alpha |
CCL2 | C-C Motif Chemokine Ligand 2 (CCL2) |
AGO2 | Argonaute-2 |
HIF1-α | Hypoxia-Inducible Factor 1-α |
MAPK1 | Mitogen-Activated Protein Kinase 1 |
ABCA1 | ATP-binding Cassette Transporter sub-family A member 1 |
APOA1 | Apolipoprotein A1 |
Col1A1 | Type I Collagen A1 |
αSMA | alpha-smooth muscle actin |
PI3k/Akt | Phosphatidylinositol-3-Kinase/ Protein Kinase B |
HMGCR | Hydroxymethylglutaryl-CoA Reductase |
FGF19 | Fibroblast Growth Factor 19 |
LXRα | Liver X Receptor alpha |
FXR | Farnesoid-X Activated Receptor |
iNOS | Inducible Nitric oxide synthases |
Gα12 | Guanine Nucleotide-binding α-subunit 12 |
GPCRs | G-protein Coupled Receptors |
Bcl2 | B-cell lymphoma-2 |
CASP2 | Caspase 2 |
MMP2 | Metalloproteinase 2 |
MMP9 | Metalloproteinase 9 |
HDAC1 | Histone deacetylase 1 |
ERK1 | Extracellular Signal-Regulated Kinase 1 |
SPRY2 | Sprouty 2 |
HBP1 | HMG-Box Transcription Factor 1 |
CCN | Central Communication Network |
DDIT4 | DNA Damage-Inducible Transcript 4 |
AlncRNA | Artificial Long Non-coding RNA |
DGCR8 | DiGeorge critical region 8 |
GGT | γ Glutamyl Transferase |
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Candidate Biomarkers | Serum | Liver | Function | Experimental Model | NAFLD Severity | Ref. |
---|---|---|---|---|---|---|
miR-122 | Up-regulated | Down-regulated | Lipid metabolism Intestinal permeability modulation Inflammation Fibrogenesis Proliferation | Human MCD mice In vitro | Steatosis NASH Fibrosis HCC | [29,38,39,40,71] |
miR-192 | Up-regulated | Down-regulated | HSCs activation | Human | Steatosis NASH Fibrosis | [29,54] |
miR-375 | Up-regulated | Up-regulated | Glucose homeostasis Intestinal permeability modulation Inflammation | Human HFD mice In vitro | Steatosis NASH HCC | [29,55,56] |
miR-125b | Up-regulated | Up-regulated | Lipid and glucose homeostasis Adipocytes differentiation HSCs activation Fibrogenesis | Human | Steatosis NASH Fibrosis | [29,87] |
miR-33a/b | Up-regulated | Up-regulated | Lipid and cholesterol metabolism Glucose homeostasis HSCs activation | Human Non-human primates HFD mice MCD mice In vitro | Steatosis NASH Fibrosis | [66,69,70] |
miR-34a | Up-regulated | Up-regulated | Lipid metabolism Oxidative stress Apoptosis Proliferation | Human HFD mice In vitro | Steatosis NASH Fibrosis HCC | [71,72,75,76] |
miR-451 | Up-regulated | Down-regulated | Inflammation | Human HFD mice In vitro | NASH | [39,79] |
miR-155 | Up-regulated | Up-regulated | Lipid metabolism Intestinal permeability modulation Inflammation | Human MCD mice In vitro | NASH | [81] |
miR-221/222 | Up-regulated | Up-regulated | HSCs activation Fibrogenesis Sorafenib resistance | Human TAA mice MCD mice In vitro | NASH Fibrosis HCC | [116,127,137] |
miR-15/16 | Up-regulated | Down-regulated | HSCs activation Proliferation and Metastasis | Human CCl4 rats In vitro | Fibrosis HCC | [45,108,109] |
miR-21 | Up-regulated | Up-regulated | Gut microbiota modulation Inflammation EMT Proliferation | Human HFD mice In vitro | NASH Fibrosis HCC | [92,93,122,125] |
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Dongiovanni, P.; Meroni, M.; Longo, M.; Fargion, S.; Fracanzani, A.L. miRNA Signature in NAFLD: A Turning Point for a Non-Invasive Diagnosis. Int. J. Mol. Sci. 2018, 19, 3966. https://doi.org/10.3390/ijms19123966
Dongiovanni P, Meroni M, Longo M, Fargion S, Fracanzani AL. miRNA Signature in NAFLD: A Turning Point for a Non-Invasive Diagnosis. International Journal of Molecular Sciences. 2018; 19(12):3966. https://doi.org/10.3390/ijms19123966
Chicago/Turabian StyleDongiovanni, Paola, Marica Meroni, Miriam Longo, Silvia Fargion, and Anna Ludovica Fracanzani. 2018. "miRNA Signature in NAFLD: A Turning Point for a Non-Invasive Diagnosis" International Journal of Molecular Sciences 19, no. 12: 3966. https://doi.org/10.3390/ijms19123966
APA StyleDongiovanni, P., Meroni, M., Longo, M., Fargion, S., & Fracanzani, A. L. (2018). miRNA Signature in NAFLD: A Turning Point for a Non-Invasive Diagnosis. International Journal of Molecular Sciences, 19(12), 3966. https://doi.org/10.3390/ijms19123966