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FB:msl-3

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Contents

Species (Taxon ID) Drosophila melanogaster (fruit fly) (taxon:7227)
Gene Name(s) msl-3 ( synonyms: CG8631, DmMsl-3, MSL, MSL-3, MSL3, Msl 1-3, Msl3, gene 2, male sex lethal 3, male specifc lethal, male specific lethal 3, mle(3)132, mle3, mls3, msl, msl3 )
Protein Name(s) male-specific lethal 3,
External Links
FB FBgn0002775

Annotations

Qualifier GO ID GO term name Reference Evidence Code with/from Aspect Notes Status
GO:0000805

X chromosome

FB:FBrf0134664
PMID:11178270[1]

NAS: Non-traceable Author Statement

C

From FB

GO:0000805

X chromosome

FB:FBrf0190734
PMID:16079233[2]

IDA: Inferred from Direct Assay

C

From FB

GO:0003682

chromatin binding

FB:FBrf0076139
PMID:7768187[3]

IDA: Inferred from Direct Assay

F

From FB

GO:0003682

chromatin binding

FB:FBrf0156834

NAS: Non-traceable Author Statement

F

From FB

GO:0003729

mRNA binding

FB:FBrf0134664
PMID:11178270[1]

TAS: Traceable Author Statement

F

From FB

GO:0003729

mRNA binding

FB:FBrf0159904
PMID:12717814[4]

TAS: Traceable Author Statement

F

From FB

GO:0005634

nucleus

FB:FBrf0156834

NAS: Non-traceable Author Statement

C

From FB

GO:0005634

nucleus

FB:FBrf0174215

IEA: Inferred from Electronic Annotation

InterPro:IPR000953
InterPro:IPR008676

C

From FB

GO:0005694

chromosome

FB:FBrf0156834

NAS: Non-traceable Author Statement

C

From FB

GO:0007549

dosage compensation

FB:FBrf0076139
PMID:7768187[3]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007549

dosage compensation

FB:FBrf0157329
PMID:12683975[5]

TAS: Traceable Author Statement

P

From FB

GO:0009047

dosage compensation by hyperactivation of X chromosome

FB:FBrf0105495

NAS: Non-traceable Author Statement

P

From FB

GO:0009047

dosage compensation by hyperactivation of X chromosome

FB:FBrf0125416
PMID:10648226[6]

NAS: Non-traceable Author Statement

P

From FB

GO:0009047

dosage compensation by hyperactivation of X chromosome

FB:FBrf0134664
PMID:11178270[1]

NAS: Non-traceable Author Statement

P

From FB

GO:0009047

dosage compensation by hyperactivation of X chromosome

FB:FBrf0156834

NAS: Non-traceable Author Statement

P

From FB

GO:0009047

dosage compensation by hyperactivation of X chromosome

FB:FBrf0159919
PMID:12801725[7]

TAS: Traceable Author Statement

P

From FB

GO:0016456

X chromosome located dosage compensation complex, transcription activating

FB:FBrf0105495

NAS: Non-traceable Author Statement

C

From FB

GO:0016456

X chromosome located dosage compensation complex, transcription activating

FB:FBrf0125416
PMID:10648226[6]

NAS: Non-traceable Author Statement

C

From FB

GO:0016456

X chromosome located dosage compensation complex, transcription activating

FB:FBrf0134664
PMID:11178270[1]

TAS: Traceable Author Statement

C

From FB

GO:0016456

X chromosome located dosage compensation complex, transcription activating

FB:FBrf0159904
PMID:12717814[4]

NAS: Non-traceable Author Statement

C

From FB

GO:0035064

methylated histone residue binding

FB:FBrf0212637
PMID:20943666[8]

IDA: Inferred from Direct Assay

F

From FB


Notes

References

See Help:References for how to manage references in GONUTS.
  1. 1.0 1.1 1.2 1.3 Amrein H (2000) Multiple RNA-protein interactions in Drosophila dosage compensation. Genome Biol 1: REVIEWS1030 PubMed GONUTS page
  2. Kotlikova IV et al. (2006) The Drosophila dosage compensation complex binds to polytene chromosomes independently of developmental changes in transcription. Genetics 172: 963-74 PubMed GONUTS page
  3. 3.0 3.1 Gorman M et al. (1995) Molecular characterization of the male-specific lethal-3 gene and investigations of the regulation of dosage compensation in Drosophila. Development 121: 463-75 PubMed GONUTS page
  4. 4.0 4.1 Wutz A (2003) RNAs templating chromatin structure for dosage compensation in animals. Bioessays 25: 434-42 PubMed GONUTS page
  5. Charlat S et al. (2003) Evolutionary consequences of Wolbachia infections. Trends Genet 19: 217-23 PubMed GONUTS page
  6. 6.0 6.1 Schütt C & Nöthiger R (2000) Structure, function and evolution of sex-determining systems in Dipteran insects. Development 127: 667-77 PubMed GONUTS page
  7. Carrozza MJ et al. (2003) The diverse functions of histone acetyltransferase complexes. Trends Genet 19: 321-9 PubMed GONUTS page
  8. Moore SA et al. (2010) Structural and biochemical studies on the chromo-barrel domain of male specific lethal 3 (MSL3) reveal a binding preference for mono- or dimethyllysine 20 on histone H4. J Biol Chem 285: 40879-90 PubMed GONUTS page
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