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: http://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-4271 -1.000 2555.000 0.059
hsa-miR-4272 1.000 631.000 0.613
hsa-miR-4273 1.000 199.000 0.814
hsa-miR-4274 -1.000 1517.000 0.267
hsa-miR-4275 -1.000 854.000 0.500
hsa-miR-4276 1.000 812.000 0.522
hsa-miR-4277 1.000 364.000 0.731
hsa-miR-4278 1.000 365.000 0.730
hsa-miR-4279 -1.000 1112.000 0.399
hsa-miR-4280 1.000 176.000 0.821
hsa-miR-4281 -1.000 2196.000 0.116
hsa-miR-4282 -1.000 968.000 0.446
hsa-miR-4283 1.000 679.000 0.586
hsa-miR-4284 -1.000 2105.000 0.135
hsa-miR-4285 -1.000 2299.000 0.098
hsa-miR-4286 -1.000 1310.000 0.329
hsa-miR-4287 1.000 426.000 0.703
hsa-miR-4288 1.000 6.000 0.950
hsa-miR-4289 -1.000 1011.000 0.430
hsa-miR-429 -1.000 1510.000 0.268
hsa-miR-4290 1.000 504.000 0.661
hsa-miR-4291 -1.000 1974.000 0.163
hsa-miR-4292 -1.000 1498.000 0.272
hsa-miR-4293 -1.000 2284.000 0.103
hsa-miR-4294 -1.000 2462.000 0.072
hsa-miR-4295 1.000 78.000 0.882
hsa-miR-4296 -1.000 1242.000 0.352
hsa-miR-4297 1.000 789.000 0.531
hsa-miR-4298 -1.000 1995.000 0.157
hsa-miR-4299 -1.000 1521.000 0.267
hsa-miR-4300 -1.000 2127.000 0.131
hsa-miR-4301 1.000 96.000 0.870
hsa-miR-4302 -1.000 1378.000 0.299
hsa-miR-4303 -1.000 1028.000 0.421
hsa-miR-4304 -1.000 1368.000 0.304
hsa-miR-4305 1.000 192.000 0.816
hsa-miR-4306 -1.000 2562.000 0.058
hsa-miR-4307 1.000 217.000 0.803
hsa-miR-4308 1.000 56.000 0.896
hsa-miR-4309 -1.000 1764.000 0.197
hsa-miR-431-3p -1.000 1435.000 0.288
hsa-miR-431-5p 1.000 743.000 0.554
hsa-miR-4310 -1.000 911.000 0.474
hsa-miR-4311 -1.000 2139.000 0.129
hsa-miR-4312 1.000 213.000 0.805
hsa-miR-4313 -1.000 1833.000 0.186
hsa-miR-4314 -1.000 2531.000 0.061
hsa-miR-4315 1.000 654.000 0.604
hsa-miR-4316 -1.000 1276.000 0.341
hsa-miR-4317 1.000 425.000 0.703
hsa-miR-4318 -1.000 1326.000 0.320
hsa-miR-4319 -1.000 1961.000 0.165
hsa-miR-432-3p 1.000 610.000 0.624
hsa-miR-432-5p -1.000 1646.000 0.233
hsa-miR-4320 -1.000 1277.000 0.341
hsa-miR-4321 -1.000 1668.000 0.227
hsa-miR-4322 -1.000 1313.000 0.328
hsa-miR-4323 -1.000 2009.000 0.154
hsa-miR-4324 -1.000 1601.000 0.242
hsa-miR-4325 1.000 206.000 0.810
hsa-miR-4326 -1.000 971.000 0.445
hsa-miR-4327 -1.000 1917.000 0.171
hsa-miR-4328 1.000 106.000 0.864
hsa-miR-4329 1.000 359.000 0.734
hsa-miR-433-3p 1.000 694.000 0.575
hsa-miR-433-5p 1.000 322.000 0.751
hsa-miR-4330 -1.000 957.000 0.449
hsa-miR-4418 -1.000 1881.000 0.176
hsa-miR-4420 1.000 555.000 0.648
hsa-miR-4421 -1.000 1655.000 0.229
hsa-miR-4422 -1.000 2605.000 0.048
hsa-miR-4423-3p -1.000 2252.000 0.107
hsa-miR-4423-5p 1.000 44.000 0.912
hsa-miR-4424 -1.000 1178.000 0.377
hsa-miR-4425 1.000 669.000 0.594
hsa-miR-4426 -1.000 2544.000 0.060
hsa-miR-4427 -1.000 2576.000 0.056
hsa-miR-4428 -1.000 2602.000 0.049
hsa-miR-4429 -1.000 2088.000 0.139
hsa-miR-4430 -1.000 1555.000 0.253
hsa-miR-4431 -1.000 2289.000 0.101
hsa-miR-4432 -1.000 2255.000 0.106
hsa-miR-4433a-3p -1.000 2334.000 0.093
hsa-miR-4433a-5p -1.000 1033.000 0.420
hsa-miR-4433b-3p -1.000 2335.000 0.093
hsa-miR-4433b-5p -1.000 1041.000 0.420
hsa-miR-4434 -1.000 2563.000 0.058
hsa-miR-4435 -1.000 2007.000 0.155
hsa-miR-4436a -1.000 2564.000 0.058
hsa-miR-4436b-3p -1.000 2596.000 0.050
hsa-miR-4436b-5p -1.000 1198.000 0.369
hsa-miR-4437 -1.000 1134.000 0.391
hsa-miR-4438 -1.000 2574.000 0.056
hsa-miR-4439 1.000 806.000 0.525
hsa-miR-4440 1.000 645.000 0.607
hsa-miR-4441 -1.000 1737.000 0.206
hsa-miR-4442 -1.000 2487.000 0.069
hsa-miR-4443 1.000 602.000 0.627
hsa-miR-4444 -1.000 1042.000 0.419
hsa-miR-4445-3p -1.000 2599.000 0.050
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