DNA damage inducible transcript 3

mammalian protein found in Homo sapiens
Protein protein Q21116814
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DNA damage inducible transcript 3

Summary

DNA damage inducible transcript 3 is a protein[1].

Key Facts

  • DNA damage inducible transcript 3's instance of is recorded as protein[2].
  • DNA damage inducible transcript 3 is part of DNA damage-inducible transcript 3[3].
  • DNA damage inducible transcript 3 is part of Basic-leucine zipper domain, protein family[4].
  • DNA damage inducible transcript 3 comprises Basic-leucine zipper domain[5].
  • DNA damage inducible transcript 3's molecular function is recorded as DNA binding[6].
  • DNA damage inducible transcript 3's molecular function is recorded as cAMP response element binding protein binding[7].
  • DNA damage inducible transcript 3's molecular function is recorded as transcription corepressor activity[8].
  • DNA damage inducible transcript 3's molecular function is recorded as DNA-binding transcription factor activity[9].
  • DNA damage inducible transcript 3's molecular function is recorded as DNA-binding transcription activator activity, RNA polymerase II-specific[10].
  • DNA damage inducible transcript 3's molecular function is recorded as transcription factor binding[11].
  • DNA damage inducible transcript 3's molecular function is recorded as transcription cis-regulatory region binding[12].
  • DNA damage inducible transcript 3's molecular function is recorded as RNA polymerase II cis-regulatory region sequence-specific DNA binding[13].
  • DNA damage inducible transcript 3's molecular function is recorded as leucine zipper domain binding[14].
  • DNA damage inducible transcript 3's molecular function is recorded as protein binding[15].
  • DNA damage inducible transcript 3's molecular function is recorded as protein heterodimerization activity[16].
  • DNA damage inducible transcript 3's molecular function is recorded as protein homodimerization activity[17].
  • DNA damage inducible transcript 3's molecular function is recorded as DNA-binding transcription factor activity, RNA polymerase II-specific[18].
  • DNA damage inducible transcript 3's molecular function is recorded as RNA polymerase II cis-regulatory region sequence-specific DNA binding[19].
  • DNA damage inducible transcript 3's molecular function is recorded as DNA-binding transcription activator activity, RNA polymerase II-specific[20].
  • DNA damage inducible transcript 3's cell component is recorded as cytoplasm[21].
  • DNA damage inducible transcript 3's cell component is recorded as cytosol[22].
  • DNA damage inducible transcript 3's cell component is recorded as late endosome[23].
  • DNA damage inducible transcript 3's cell component is recorded as CHOP-C/EBP complex[24].
  • DNA damage inducible transcript 3's cell component is recorded as nucleoplasm[25].
  • DNA damage inducible transcript 3's cell component is recorded as transcription factor AP-1 complex[26].

References

Programmatic citations — every numbered marker resolves to a verifiable graph row below.

Direct Wikidata claims

  1. [2] . Q905695. Retrieved . wikidata.org.
  2. [3] . InterPro Release 71.0. ebi.ac.uk. Provenance: wikidata.org.
  3. [4] . wikidata.org.
  4. [5] . InterPro Release 71.0. ebi.ac.uk. Provenance: wikidata.org.
  5. [6] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  6. [7] . The cAMP response element binding protein-2 (CREB-2) can interact with the C/EBP-homologous protein (CHOP). Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  7. [8] . Fusion of the dominant negative transcription regulator CHOP with a novel gene FUS by translocation t(12;16) in malignant liposarcoma. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  8. [9] . Fusion of CHOP to a novel RNA-binding protein in human myxoid liposarcoma. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  9. [10] . Oncogenic Ras and B-Raf proteins positively regulate death receptor 5 expression through co-activation of ERK and JNK signaling. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  10. [11] . The C/EBP homologous protein CHOP (GADD153) is an inhibitor of Wnt/TCF signals. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  11. [12] . Q24299363. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  12. [13] . Oncogenic Ras and B-Raf proteins positively regulate death receptor 5 expression through co-activation of ERK and JNK signaling. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  13. [14] . Analysis of ATF3, a transcription factor induced by physiological stresses and modulated by gadd153/Chop10. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  14. [15] . TRB3, a novel ER stress-inducible gene, is induced via ATF4-CHOP pathway and is involved in cell death. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  15. [16] . Roles of CHOP/GADD153 in endoplasmic reticulum stress. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  16. [17] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  17. [18] . A census of human transcription factors: function, expression and evolution. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  18. [19] . Oncogenic Ras and B-Raf proteins positively regulate death receptor 5 expression through co-activation of ERK and JNK signaling. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  19. [20] . Oncogenic Ras and B-Raf proteins positively regulate death receptor 5 expression through co-activation of ERK and JNK signaling. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  20. [21] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  21. [22] . Roles of CHOP/GADD153 in endoplasmic reticulum stress. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  22. [23] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  23. [24] . Roles of CHOP/GADD153 in endoplasmic reticulum stress. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  24. [25] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.
  25. [26] . GOA. Retrieved . ebi.ac.uk. Provenance: wikidata.org.

Class ancestry

  1. [1] . Wikidata. wikidata.org.

📑 Cite this page

Use these citations when quoting this entity in research, articles, AI prompts, or wherever provenance matters. We aggregate Wikidata + Wikipedia + authoritative open-data sources; the stitched, scored, cross-referenced view is what 4ort.xyz contributes.

APA 4ort.xyz Knowledge Graph. (2026). DNA damage inducible transcript 3. Retrieved May 3, 2026, from https://4ort.xyz/entity/dna-damage-inducible-transcript-3
MLA “DNA damage inducible transcript 3.” 4ort.xyz Knowledge Graph, 4ort.xyz, 3 May. 2026, https://4ort.xyz/entity/dna-damage-inducible-transcript-3.
BibTeX @misc{4ortxyz_dna-damage-inducible-transcript-3_2026, author = {{4ort.xyz Knowledge Graph}}, title = {{DNA damage inducible transcript 3}}, year = {2026}, url = {https://4ort.xyz/entity/dna-damage-inducible-transcript-3}, note = {Accessed: 2026-05-03}}
LLM prompt According to 4ort.xyz Knowledge Graph (aggregator of Wikidata, Wikipedia, and authoritative open-data sources): DNA damage inducible transcript 3 — https://4ort.xyz/entity/dna-damage-inducible-transcript-3 (retrieved 2026-05-03)

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Edit History

Rolling log of changes to this entity's Wikidata record. Values shown reflect the current state of each edited property — follow the history link to see the precise diff for any edit.

  1. 18w ago · MatSuBot bot · 2026-05-12 view diff on Wikidata ↗
    Instance of protein
    Uniprot protein id P35638
    Refseq protein id NP_001181982, NP_001181983, NP_001181984 +3
    Has part(s) Basic-leucine zipper domain
    + 12 other properties edited (see Wikidata diff for full list)
    "/* wbeditentity-update-languages-short:0||es, ca, ja, uk, tt */ import labels from sitelinks"
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