Development of MicroRNA Therapeutics for Hepatocellular Carcinoma
Abstract
:1. Introduction
2. Involvement of MicroRNAs in HCC
Sample type | Method | miRNAs * | Cellular Target/Mechanism | Reference |
---|---|---|---|---|
Tumor tissues | Microarray, qPCR | miR-199a, miR-92, miR-106a, miR-222, miR-17-5p, miR-18, miR-20 | Tumor progression | [23] |
Tumor tissues, rat model of hepatoma | Microarray, Northern blot | miR-122, let-7a, miR-21, miR-23, miR-130, miR-190, miR-17-92 family | Tumorigenesis | [30] |
Tumor tissue | Microarray | miR-122 | Loss of mitochondrial metabolism | [31] |
HCC cell lines | qPCR | miR-122 | NDRG3 | [32] |
Tumor tissues, HCC cell lines | Microarray, qPCR Northern blot | miR-122 let-7 family, miR-145 | Cyclin G1 | [33] |
HCC cell lines | Western blot, Soft agar assay | miR-122 | ADAM17, migration, invasion, anchorage-dependence, angiogenesis, metastasis | [34] |
Tumor tissues, HCC cell lines | qPCR, Western blot | miR-34a | c-Met, apoptosis, cell cycle arrest, Senescence | [36] |
Tumor tissues, HCC cell lines | Microarray, Northern blot, Western blot | miR-101 | Mcl-1, apoptosis, tumor suppression | [39] |
Tumor tissues | Microarray, qPCR | miR-199-a-5p, miR-223 | Cell cycle inhibition | [22,35,36,37,38,40] |
Human and Woodchuck HCC cell lines | qPCR, Northern blot | miR-17-92, miR-21 | Cell proliferation, apoptosis | [41] |
Tumor tissues | qPCR, Northern blot | miR-221 | CDKN1C/p57, CDKN1B/p27 | [42] |
Tumor tissues | Microarray, qPCR, Northern blot | miR-21 | PTEN | [43] |
Tumor tissues | Microarray | miR-224 | Apoptosis inhibitor-5 | [44] |
3. Strategies for the Modulation and Delivery of miRNAs
Therapeutic strategy | miRNA modulator/overexpression | Cancer | Delivery method ( in vitro/in vivo) | Reference |
---|---|---|---|---|
miRNA inhibition | LNA-anti-miR-19 | Breast | Transfection | [48] |
LNA-miR-135b | Lymphoma | Lentivirus | [49] | |
Anti-miR-21/anti-miR-155/anti-miR-17-5p/anti-miR-1/anti-miR-133AMO | Breast | Transfection | [50] | |
Anti-miR-221-AMO | Liver | i.v. injection | [51] | |
AntagomiR-17-5p | Neuroblastoma | Lentivirus | [52] | |
AntagomiR-221/222 | Prostate | s.c. injection | [53] | |
Anti-oncomiRs miR-143/miR-145/liposome complexes | Colorectal | i.v. injection | [54] | |
miR-145/PU-PEI complexes | Glioblastoma | s.c. injection | [55] | |
LNA-miR-145/PU-PEI | Lung adenocarcinoma | s.c. injection | [56] | |
MUC1 aptamer-miR-29b | Ovarian | Transfection | [57] | |
Nucelolin-miR-122 aptamer | Brain | Transfection | [58] | |
miRNA replacement therapy | scFV antibody coupled to miR-34a nanoparticles | Lung | i.v. injection | [59] |
miR-34a mimic | Lung | s.c. injection | [60] | |
miR-33a/PEI and miR-145/PEI complexes | Colon | i.p./i.v. injection | [61] | |
miR-34a mimic | Colon | Transfection | [62] | |
miR-34a and let-7 mimics miR-26a | Lung | xenografts | [63] | |
miR-26a | Liver | AAV vector | [64] |
3.1. Stabilizing miRNA Inhibitors by Chemical Modifications
3.3. Modulating Virus-Mediated Delivery of miRNAs
4. Strategies for the Development of miRNA Therapeutics for HCC
4.1. Inhibition of OncomiRs
4.2. miRNA Replacement Therapy
5. Perspectives
Acknowledgments
References
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Aravalli, R.N. Development of MicroRNA Therapeutics for Hepatocellular Carcinoma. Diagnostics 2013, 3, 170-191. https://doi.org/10.3390/diagnostics3010170
Aravalli RN. Development of MicroRNA Therapeutics for Hepatocellular Carcinoma. Diagnostics. 2013; 3(1):170-191. https://doi.org/10.3390/diagnostics3010170
Chicago/Turabian StyleAravalli, Rajagopal N. 2013. "Development of MicroRNA Therapeutics for Hepatocellular Carcinoma" Diagnostics 3, no. 1: 170-191. https://doi.org/10.3390/diagnostics3010170
APA StyleAravalli, R. N. (2013). Development of MicroRNA Therapeutics for Hepatocellular Carcinoma. Diagnostics, 3(1), 170-191. https://doi.org/10.3390/diagnostics3010170