This menu provides the list of EV miRNAs identified by high-throughput analyses.
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Search:
Dataset accession
miRBase accession
Mature name
Orthologous group
Superdomain:
All
Prokaryote
Eukaryote
Filter datasets:
- "Sample type" indicates the source from which EVs originated (e.g. B cell, serum).
- "Sample status" indicates the condition of the source from which EVs originated (e.g. Normal, miR-146a-treated, Patients of hernia).
By species
Homo sapiens
In vitro/In vivo
Ex vivo
In vitro
In vivo
By sample type
Bone marrow stromal cells
Bone marrow-derived mesenchymal stem cell (R14)
Breast cancer cells (MDA-MB-231)
Mammary gland cells (MCF10A)
Multiple myeloma cells (U266)
Plasma
Serum
By sample status
Electroporated with Dicer antibody
Extremely severe hand, foot, and mouth disease
Hypoxic condition (24 hr)
Multiple myeloma patients
Normal
Normal_Exiqon
Normal_old
Sample A_Biooscientific
Sample A_Illumina
Sample A_NEB
Sample B_Biooscientific
Sample B_NEB
Sample C_NEB
Survived under long-term hypoxia
shDicer-transfected
Maximum false positive rate (FPR):
Maximum true positive rate (TPR):
- FPR is the probability that an absent miRNA accidently have higher intensity than that miRNA.
- TPR is the percentile of miRNA among the present miRNAs.
Please see user manual in the contact us/help menu for detail.
Number of molecules in one page:
100
200
All
The downloaded CSV file is not exactly the same as the displayed table. Opening CSV file with Excel can impair its content.
Since there are multiple primers in the microarray, the same miRNA can have several FPR and TPR values.
Mature name
miRBase accession
FPR
TPR
Publication
Orthologous group
Identification count
All / Prokaryote / Eukaryote
(FPR<0.05,TPR<0.5)
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.7e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
3.0e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
3.0e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.7e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
2.9e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
3.1e-1
Characterization of human plasma-derived exosomal RNAs by deep sequencing.
BMC Genomics. 2013 May 10;14:319. doi: 10.1186/1471-2164-14-319.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
4.7e-1
Exosomes from bone marrow mesenchymal stem cells contain a microRNA that promotes dormancy in metastatic breast cancer cells.
Sci Signal. 2014 Jul 1;7(332):ra63. doi: 10.1126/scisignal.2005231.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
3.4e-1
MicroRNA expression profile in exosome discriminates extremely severe infections from mild infections for hand, foot and mouth disease.
BMC Infect Dis. 2014 Sep 17;14(1):506. doi: 10.1186/1471-2334-14-506.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
9.3e-4
9.3e-4
Exosomal miR-135b shed from hypoxic multiple myeloma cells enhances angiogenesis by targeting factor-inhibiting HIF-1.
Blood. 2014 Oct 15. pii: blood-2014-05-576116.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
1.1e-3
1.1e-3
Exosomal miR-135b shed from hypoxic multiple myeloma cells enhances angiogenesis by targeting factor-inhibiting HIF-1.
Blood. 2014 Oct 15. pii: blood-2014-05-576116.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
6.6e-9
0.0e+0
Exosomal miR-135b shed from hypoxic multiple myeloma cells enhances angiogenesis by targeting factor-inhibiting HIF-1.
Blood. 2014 Oct 15. pii: blood-2014-05-576116.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
1.1e-12
4.6e-1
Combined Evaluation of a Panel of Protein and miRNA Serum Exosome Biomarkers for Pancreatic Cancer Diagnosis Increases Sensitivity and Specificity.
Int J Cancer. 2014 Nov 12. doi: 10.1002/ijc.29324.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.6e-1
Cancer Exosomes Perform Cell-Independent MicroRNA Biogenesis and Promote Tumorigenesis.
Cancer Cell. 2014 Nov 10;26(5):707-721. doi: 10.1016/j.ccell.2014.09.005. Epub 2014 Oct 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.4e-1
Cancer Exosomes Perform Cell-Independent MicroRNA Biogenesis and Promote Tumorigenesis.
Cancer Cell. 2014 Nov 10;26(5):707-721. doi: 10.1016/j.ccell.2014.09.005. Epub 2014 Oct 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
3.0e-1
Cancer Exosomes Perform Cell-Independent MicroRNA Biogenesis and Promote Tumorigenesis.
Cancer Cell. 2014 Nov 10;26(5):707-721. doi: 10.1016/j.ccell.2014.09.005. Epub 2014 Oct 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.2e-1
Cancer Exosomes Perform Cell-Independent MicroRNA Biogenesis and Promote Tumorigenesis.
Cancer Cell. 2014 Nov 10;26(5):707-721. doi: 10.1016/j.ccell.2014.09.005. Epub 2014 Oct 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
0.0e+0
1.2e-1
Cancer Exosomes Perform Cell-Independent MicroRNA Biogenesis and Promote Tumorigenesis.
Cancer Cell. 2014 Nov 10;26(5):707-721. doi: 10.1016/j.ccell.2014.09.005. Epub 2014 Oct 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
4.6e-5
0.0e+0
Replenishing exosomes from older bone marrow stromal cells with miR-340 inhibits myeloma-related angiogenesis.
Blood Adv. 2017 May 16;1(13):812-823. doi: 10.1182/bloodadvances.2016003251. eCollection 2017 May 23.
MIPF0000021_2
25
/
0
/
25
hsa-miR-124-3p
MIMAT0000422
1.8e-2
1.8e-2
Replenishing exosomes from older bone marrow stromal cells with miR-340 inhibits myeloma-related angiogenesis.
Blood Adv. 2017 May 16;1(13):812-823. doi: 10.1182/bloodadvances.2016003251. eCollection 2017 May 23.
MIPF0000021_2
25
/
0
/
25
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