b7b9978c92a2376d6d9ef4f0a4974cb8167295f8 gperez2 Wed Sep 30 14:17:50 2026 -0700 Updating the TAD tracks from the qa-track SKILL.md pass (hg19, hg38, mm10, mm39): shortLabel fixes for cut-off and duplicate ENCODE and 3DGB subtracks, lowercase biosamples in ENCODE longLabels, " bnd" dropped from Schmitt shortLabels, 3DGB subtracks set to pack with three mm10/mm39 defaults turned on, allButtonPair removed so the Schmitt matrix shows, and McArthur item labels hidden. Merged identical description pages into human/ and mouse/, plus description page cleanups (regenerated References, removed the "How to use these tracks" section, ENCODE pages now say 112 of 117 biosamples use Arrowhead). Also updated the ENCODE metadata columns and organ example in the hg38 makedoc. refs #21599 diff --git src/hg/makeDb/trackDb/mouse/mm39/tadsEncode.html src/hg/makeDb/trackDb/mouse/tadsEncode.html similarity index 54% rename from src/hg/makeDb/trackDb/mouse/mm39/tadsEncode.html rename to src/hg/makeDb/trackDb/mouse/tadsEncode.html index 511abca9a7e..fa0052d1d23 100644 --- src/hg/makeDb/trackDb/mouse/mm39/tadsEncode.html +++ src/hg/makeDb/trackDb/mouse/tadsEncode.html @@ -1,68 +1,83 @@

Description

This composite shows TAD domains ("contact domains") called by the ENCODE uniform Hi-C pipeline across 16 mouse biosamples. Contact domains are regions that preferentially self-interact, called by the Arrowhead algorithm (Juicer). Each subtrack is one biosample, browsable with a faceted selector (filter by organ, biosample type, assay, life stage, and call type).

The calls are native to mm10. On mm39 they are shown lifted from mm10 (noted in each track's long label); the "Calls" facet records the native call assembly.

Display Conventions and Configuration

-Each domain is drawn as a box, and subtracks are colored by organ. Mousing over a -domain shows the biosample and the Arrowhead corner score; the details page also reports -Arrowhead's upper/lower variance and sign scores. Use the faceted selector on the track -configuration page to choose biosamples by Organ, Biosample type, Assay -(intact or in situ Hi-C), Life stage, and Calls. These calls use a different -algorithm and finer resolution (5 kb sub-TAD contact domains) than the Dixon domains and are -not directly comparable to them. +Subtracks are colored by organ. Mousing over a domain shows the biosample and the +Arrowhead corner score. The details page also reports Arrowhead's upper/lower variance and +sign scores. Use the faceted selector on the track configuration page to choose biosamples +by Organ, Biosample type, Assay (intact or in situ Hi-C), +Life stage, and Calls. These calls use a different algorithm and finer +resolution (5 kb) than the Dixon domains, produce smaller domains, and are not directly +comparable to them.

Methods

Contact domains were produced by the ENCODE uniform Hi-C processing pipeline (Aiden lab, built on Juicer), which calls domains with Arrowhead. For each biosample, one representative experiment was selected (preferring an untreated baseline over a perturbed experiment where both were available) and its contact-domain files were pooled: each Juicer/Arrowhead paired-anchor BEDPE record (both anchors describing the same domain interval) was reduced to a single domain interval, the five Arrowhead scores retained, and replicate calls whose endpoints fell within one 5 kb bin merged (keeping the higher corner score). For mm39, the mm10 domains were lifted with liftOver. The chosen ENCODE experiment accession is given in each subtrack's long label and links to the ENCODE portal.

Data Access

The raw data can be explored interactively with the Table Browser or the Data Integrator. For programmatic access, the track can be accessed using the Genome Browser's REST API. The underlying bigBed files can be downloaded from our download server. The complete dataset is available at the ENCODE portal.

References

-ENCODE Project Consortium, Snyder MP, Gingeras TR, Moore JE, Weng Z, et al. -Perspectives on ENCODE. Nature. 2020;583(7818):693-698. -doi:10.1038/s41586-020-2449-8 +Durand NC, Shamim MS, Machol I, Rao SS, Huntley MH, Lander ES, Aiden EL. + +Juicer Provides a One-Click System for Analyzing Loop-Resolution Hi-C Experiments. +Cell Syst. 2016 Jul;3(1):95-8. +DOI: 10.1016/j.cels.2016.07.002; PMID: 27467249; PMC: PMC5846465

-Rao SS, Huntley MH, Durand NC, Stamenova EK, et al. -A 3D map of the human genome at kilobase resolution reveals principles of chromatin looping. -Cell. 2014;159(7):1665-80. -doi:10.1016/j.cell.2014.11.021 +ENCODE Project Consortium, Snyder MP, Gingeras TR, Moore JE, Weng Z, Gerstein MB, Ren B, Hardison +RC, Stamatoyannopoulos JA, Graveley BR et al. + +Perspectives on ENCODE. +Nature. 2020 Jul;583(7818):693-698. +DOI: 10.1038/s41586-020-2449-8; PMID: 32728248; PMC: PMC7410827

-Durand NC, Shamim MS, Machol I, Rao SS, Huntley MH, Lander ES, Aiden EL. -Juicer Provides a One-Click System for Analyzing Loop-Resolution Hi-C Experiments. -Cell Syst. 2016;3(1):95-8. -doi:10.1016/j.cels.2016.07.002 +Rao SS, Huntley MH, Durand NC, Stamenova EK, Bochkov ID, Robinson JT, Sanborn AL, Machol I, Omer AD, +Lander ES et al. + +A 3D map of the human genome at kilobase resolution reveals principles of chromatin looping. +Cell. 2014 Dec 18;159(7):1665-80. +DOI: 10.1016/j.cell.2014.11.021; PMID: 25497547; PMC: PMC5635824