Freiburg RNA Tools
BrainDead - Results
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BrainDead 4526878

Input and runtime details for job 4526878 (precomputed example)

Training data

? Class-annotated RNAs in FASTA[.fa]

Model parameters

? k-mers of interest
AA,AGA,AGGU,AGU,AGUU,CU,GAA,GAGG,GG,GGG,GU,GUU,UGA,UGU,UU,UUG,UUGU,UUU
? k-mer features reflect
number of occurrences (feature is number >= 0)
? Max. energy ranked stable-3
? Machine learning model
Support Vector Classification using RBF kernel

Candidate data

? Candidate RNAs in FASTA[.fa]

Job ID 4526878 (server version trunk)

?Job Submitted & Queued@ Wed Feb 10 15:00:26 CET 2021
?BrainDead Started@ Wed Feb 10 15:16:53 CET 2021
?BrainDead Finished & Post-Processing@ Wed Feb 10 15:16:53 CET 2021
?Post-Processing Finished@ Wed Feb 10 15:17:07 CET 2021
?Job Completed@ Wed Feb 10 15:17:11 CET 2021
 DIRECT ACCESS: https://rna.informatik.uni-freiburg.de/RetrieveResults.jsp?jobID=4526878&toolName=BrainDead ( 30 days expiry )

Description of the job

miRNAs as ligands for microglia activation

This example summarizes our study that investigates the ability of mature miRNAs to act as immune receptor ligands. The ability of extracellular miRNAs to directly activate receptors is a recently discovered new field of operation of miRNAs beside their classic role in post-transcriptional gene regulation. The small RNAs available within the example's training data were experimentally tested for their potential to activate murine microglia cells in vitro. They are pre-classified as +/-1 when found activating or non-activating, resp., using fold change analyses based TNF-alpha concentration measurements. The example's training data set comprises both the original training data (top group) as well as the experimentally verified candidate sequences (middle and bottom group) from our initial BrainDead main publication (see list of references within Help page). For details on the selected k-mers, please refer to the manuscript. The candidate set covers all mature human miRNAs from mirBase v22.1.

? Output download complete results [zip]

Downloads

Predictions for candidate RNAs

Predicted class

Sort by selecting a column name.
RNA id class rank prob(1)
hsa-miR-4679 1.000 345.000 0.739
hsa-miR-4680-3p 1.000 360.000 0.734
hsa-miR-4680-5p -1.000 1685.000 0.223
hsa-miR-4681 -1.000 2316.000 0.096
hsa-miR-4682 1.000 346.000 0.739
hsa-miR-4683 -1.000 2372.000 0.087
hsa-miR-4684-3p -1.000 1214.000 0.364
hsa-miR-4684-5p -1.000 964.000 0.448
hsa-miR-4685-3p -1.000 1113.000 0.399
hsa-miR-4685-5p 1.000 777.000 0.536
hsa-miR-4686 1.000 565.000 0.646
hsa-miR-4687-3p -1.000 1119.000 0.397
hsa-miR-4687-5p -1.000 2075.000 0.142
hsa-miR-4688 -1.000 2066.000 0.143
hsa-miR-4689 -1.000 1858.000 0.182
hsa-miR-4690-3p -1.000 1445.000 0.284
hsa-miR-4690-5p -1.000 2010.000 0.154
hsa-miR-4691-3p -1.000 1822.000 0.188
hsa-miR-4691-5p -1.000 1249.000 0.351
hsa-miR-4692 -1.000 1815.000 0.189
hsa-miR-4693-3p -1.000 2360.000 0.089
hsa-miR-4693-5p -1.000 1267.000 0.343
hsa-miR-4694-3p -1.000 1847.000 0.184
hsa-miR-4694-5p 1.000 248.000 0.787
hsa-miR-4695-3p 1.000 638.000 0.611
hsa-miR-4695-5p -1.000 2232.000 0.109
hsa-miR-4696 -1.000 1440.000 0.286
hsa-miR-4697-3p 1.000 460.000 0.686
hsa-miR-4697-5p -1.000 2020.000 0.151
hsa-miR-4698 -1.000 2472.000 0.071
hsa-miR-4699-3p -1.000 862.000 0.500
hsa-miR-4699-5p -1.000 1116.000 0.398
hsa-miR-4700-3p -1.000 1200.000 0.369
hsa-miR-4700-5p -1.000 917.000 0.470
hsa-miR-4701-3p -1.000 1745.000 0.201
hsa-miR-4701-5p 1.000 724.000 0.564
hsa-miR-4703-3p 1.000 85.000 0.876
hsa-miR-4703-5p -1.000 2109.000 0.135
hsa-miR-4704-3p -1.000 1002.000 0.432
hsa-miR-4704-5p 1.000 718.000 0.568
hsa-miR-4705 -1.000 1152.000 0.385
hsa-miR-4706 -1.000 2467.000 0.072
hsa-miR-4707-3p 1.000 626.000 0.617
hsa-miR-4707-5p -1.000 863.000 0.500
hsa-miR-4708-3p -1.000 1182.000 0.376
hsa-miR-4708-5p -1.000 930.000 0.463
hsa-miR-4709-3p -1.000 1185.000 0.375
hsa-miR-4709-5p -1.000 1125.000 0.393
hsa-miR-4710 -1.000 934.000 0.462
hsa-miR-4711-3p 1.000 562.000 0.646
hsa-miR-4711-5p -1.000 2384.000 0.085
hsa-miR-4712-3p -1.000 1738.000 0.205
hsa-miR-4712-5p 1.000 408.000 0.709
hsa-miR-4713-3p -1.000 2635.000 0.034
hsa-miR-4713-5p -1.000 989.000 0.435
hsa-miR-4714-3p 1.000 332.000 0.746
hsa-miR-4714-5p 1.000 300.000 0.763
hsa-miR-4715-3p -1.000 2285.000 0.102
hsa-miR-4715-5p 1.000 250.000 0.786
hsa-miR-4716-3p -1.000 2603.000 0.049
hsa-miR-4716-5p 1.000 10.000 0.940
hsa-miR-4717-3p -1.000 1257.000 0.347
hsa-miR-4717-5p -1.000 1379.000 0.297
hsa-miR-4718 -1.000 1812.000 0.189
hsa-miR-4719 -1.000 1848.000 0.184
hsa-miR-4720-3p 1.000 158.000 0.835
hsa-miR-4720-5p 1.000 692.000 0.577
hsa-miR-4721 -1.000 1154.000 0.385
hsa-miR-4722-3p -1.000 1413.000 0.289
hsa-miR-4722-5p 1.000 589.000 0.635
hsa-miR-4723-3p -1.000 1849.000 0.184
hsa-miR-4723-5p -1.000 2367.000 0.088
hsa-miR-4724-3p 1.000 523.000 0.656
hsa-miR-4724-5p -1.000 2519.000 0.063
hsa-miR-4725-3p -1.000 2377.000 0.086
hsa-miR-4725-5p -1.000 2019.000 0.152
hsa-miR-4726-3p 1.000 599.000 0.628
hsa-miR-4726-5p -1.000 1946.000 0.167
hsa-miR-4727-3p -1.000 2656.000 0.020
hsa-miR-4727-5p -1.000 1202.000 0.368
hsa-miR-4728-3p 1.000 712.000 0.568
hsa-miR-4728-5p -1.000 2488.000 0.069
hsa-miR-4729 -1.000 908.000 0.475
hsa-miR-4730 -1.000 1266.000 0.344
hsa-miR-4731-3p -1.000 2041.000 0.148
hsa-miR-4731-5p -1.000 1018.000 0.427
hsa-miR-4732-3p 1.000 17.000 0.930
hsa-miR-4732-5p -1.000 2532.000 0.061
hsa-miR-4733-3p -1.000 1203.000 0.367
hsa-miR-4733-5p -1.000 2546.000 0.060
hsa-miR-4734 -1.000 1807.000 0.190
hsa-miR-4735-3p -1.000 2110.000 0.135
hsa-miR-4735-5p -1.000 879.000 0.493
hsa-miR-4736 1.000 796.000 0.530
hsa-miR-4737 -1.000 1676.000 0.225
hsa-miR-4738-3p -1.000 2190.000 0.117
hsa-miR-4738-5p 1.000 320.000 0.751
hsa-miR-4739 -1.000 2305.000 0.098
hsa-miR-4740-3p -1.000 2145.000 0.128
hsa-miR-4740-5p -1.000 1217.000 0.363
Rows: 1-100 101-200 201-300 301-400 401-500 501-600 601-700 701-800 801-900 901-1000 1001-1100 1101-1200 1201-1300 1301-1400 1401-1500 1501-1600 1601-1700 1701-1800 1801-1900 1901-2000 2001-2100 2101-2200 2201-2300 2301-2400 2401-2500 2501-2600 2601-2656 all

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When using BrainDead please cite :

Results are computed with BrainDead version 1.0.1 using IntaRNA 3.1.5 and Vienna RNA package 2.4.14