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DANRE:Q9DGI6

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Species (Taxon ID) Danio rerio (Zebrafish) (Brachydanio rerio). (7955)
Gene Name(s) acvr1l (ECO:0000313 with ZFIN:ZDB-GENE-990415-9)
Protein Name(s) Type I serine-threonine kinase receptor (ECO:0000313 with EMBL:AAG01346.1)
External Links
UniProt Q9DGI6
EMBL AF292028
UniGene Dr.75831
ProteinModelPortal Q9DGI6
SMR Q9DGI6
ZFIN ZDB-GENE-990415-9
HOVERGEN HBG054502
PhylomeDB Q9DGI6
GO GO:0070724
GO:0005938
GO:0005737
GO:0005887
GO:0005524
GO:0004702
GO:0005024
GO:0009952
GO:0030509
GO:0007420
GO:0003230
GO:0051216
GO:0021556
GO:0061371
GO:0035462
GO:0003140
GO:0007368
GO:0048264
GO:0060030
GO:0009953
GO:0035124
GO:0035050
GO:0003143
GO:0035162
GO:0003146
GO:0001947
GO:0048368
GO:0001889
GO:0048332
GO:0046588
GO:0042476
GO:0042475
GO:0003342
GO:0051260
GO:0006468
GO:0030510
GO:0001944
InterPro IPR000472
IPR011009
IPR000719
IPR017441
IPR008271
IPR003605
IPR000333
PANTHER PTHR23255
Pfam PF01064
PF00069
PF08515
SMART SM00467
SUPFAM SSF56112
PROSITE PS51256
PS00107
PS50011
PS00108

Annotations

Qualifier GO ID GO term name Reference ECO ID ECO term name with/from Aspect Extension Notes Status

part_of

GO:0070724

BMP receptor complex

PMID:19377468[1]

ECO:0000314

direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

involved_in

GO:0061371

determination of heart left/right asymmetry

PMID:21937597[2]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0060030

dorsal convergence

PMID:17331724[3]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-2

P

Seeded From UniProt

complete

involved_in

GO:0051260

protein homooligomerization

PMID:19377468[1]

ECO:0000314

direct assay evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0051216

cartilage development

PMID:14648845[4]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048368

lateral mesoderm development

PMID:19232521[5]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048332

mesoderm morphogenesis

PMID:11165484[6]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:9007231[7]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:18194657[8]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-110804-6

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:16527746[9]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:12601179[10]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11222141[11]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11222140[12]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11222140[12]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-1
ZFIN:ZDB-MRPHLNO-060920-2

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11222140[12]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11165484[6]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0048264

determination of ventral identity

PMID:11222140[12]

ECO:0000314

direct assay evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0046588

negative regulation of calcium-dependent cell-cell adhesion

PMID:17331724[3]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-2

P

Seeded From UniProt

complete

involved_in

GO:0046588

negative regulation of calcium-dependent cell-cell adhesion

PMID:17331724[3]

ECO:0000314

direct assay evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0042476

odontogenesis

PMID:11759004[13]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0042476

odontogenesis

PMID:14745232[14]

ECO:0000270

expression pattern evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0035462

determination of left/right asymmetry in diencephalon

PMID:21937597[2]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0035162

embryonic hemopoiesis

PMID:16527746[9]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-060403-1

P

Seeded From UniProt

complete

involved_in

GO:0035124

embryonic caudal fin morphogenesis

PMID:11222141[11]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0035050

embryonic heart tube development

PMID:18267096[15]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0030510

regulation of BMP signaling pathway

PMID:12601179[10]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-GENE-980526-373

P

Seeded From UniProt

complete

involved_in

GO:0030510

regulation of BMP signaling pathway

PMID:14648845[4]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0030509

BMP signaling pathway

PMID:22484487[16]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-2
ZFIN:ZDB-MRPHLNO-120614-7

P

Seeded From UniProt

complete

involved_in

GO:0030509

BMP signaling pathway

PMID:11222141[11]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-GENE-980526-474

P

Seeded From UniProt

complete

involved_in

GO:0030509

BMP signaling pathway

PMID:11222141[11]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-GENE-000208-25

P

Seeded From UniProt

complete

involved_in

GO:0021556

central nervous system formation

PMID:11165484[6]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:22484487[16]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-2
ZFIN:ZDB-MRPHLNO-120614-7

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:12601179[10]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-GENE-980526-373

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:11165484[6]

ECO:0000316

genetic interaction evidence used in manual assertion

ZFIN:ZDB-GENE-980526-527

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:19855136[17]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:19377468[1]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-MRPHLNO-060920-2
ZFIN:ZDB-MRPHLNO-090610-3

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:16775002[18]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:11969259[19]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:11222141[11]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0009953

dorsal/ventral pattern formation

PMID:11165484[6]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0009952

anterior/posterior pattern specification

PMID:12482931[20]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0007420

brain development

PMID:14648845[4]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0007368

determination of left/right symmetry

PMID:9334285[21]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0006468

protein phosphorylation

PMID:9566954[22]

ECO:0000250

sequence similarity evidence used in manual assertion

UniProtKB:Q04771

P

Seeded From UniProt

complete

part_of

GO:0005938

cell cortex

PMID:18248203[23]

ECO:0000314

direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

part_of

GO:0005887

integral component of plasma membrane

PMID:9566954[22]

ECO:0000250

sequence similarity evidence used in manual assertion

UniProtKB:P37172

C

Seeded From UniProt

complete

part_of

GO:0005737

cytoplasm

PMID:18248203[23]

ECO:0000314

direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

enables

GO:0005524

ATP binding

PMID:9566954[22]

ECO:0000250

sequence similarity evidence used in manual assertion

UniProtKB:Q04771

F

Seeded From UniProt

complete

involved_in

GO:0003342

proepicardium development

PMID:20413782[24]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0003230

cardiac atrium development

PMID:19232521[5]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0003146

heart jogging

PMID:9334285[21]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0003143

embryonic heart tube morphogenesis

PMID:9334285[21]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0003140

determination of left/right asymmetry in lateral mesoderm

PMID:21937597[2]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-080731-4

P

Seeded From UniProt

complete

involved_in

GO:0001947

heart looping

PMID:9334285[21]

ECO:0000315

mutant phenotype evidence used in manual assertion

P

Seeded From UniProt

complete

involved_in

GO:0001947

heart looping

PMID:17395172[25]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0001944

vasculature development

PMID:11222141[11]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0001889

liver development

PMID:17507405[26]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-980202-960

P

Seeded From UniProt

complete

involved_in

GO:0001503

ossification

PMID:28394244[27]

ECO:0000315

mutant phenotype evidence used in manual assertion

ZFIN:ZDB-GENO-190109-3

P

Seeded From UniProt

complete

enables

GO:0098821

BMP receptor activity

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

PANTHER:PTN002356032
UniProtKB:P37023

F

Seeded From UniProt

complete

enables

GO:0048185

activin binding

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:87911
PANTHER:PTN002356032
UniProtKB:P37023
UniProtKB:Q04771

F

Seeded From UniProt

complete

part_of

GO:0048179

activin receptor complex

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

PANTHER:PTN002356032
RGD:620200
UniProtKB:Q04771

C

Seeded From UniProt

complete

enables

GO:0046332

SMAD binding

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:98728
MGI:MGI:98729
PANTHER:PTN000583675
RGD:621789
UniProtKB:O00238
UniProtKB:P36894
UniProtKB:P36896
UniProtKB:P36897
UniProtKB:P37023
UniProtKB:P37173
UniProtKB:Q04771

F

Seeded From UniProt

complete

part_of

GO:0043235

receptor complex

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

PANTHER:PTN000583675
UniProtKB:P27037
UniProtKB:P36896
UniProtKB:P36897
UniProtKB:P37173
UniProtKB:Q13705

C

Seeded From UniProt

complete

enables

GO:0019838

growth factor binding

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:102806
MGI:MGI:87911
MGI:MGI:87912
PANTHER:PTN000583675
RGD:71082
UniProtKB:P36896
UniProtKB:P36897
UniProtKB:Q13705
UniProtKB:Q8NER5

F

Seeded From UniProt

complete

contributes_to

GO:0016361

activin receptor activity, type I

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:87911
PANTHER:PTN002356032
RGD:620200
UniProtKB:P37023
UniProtKB:Q04771

F

Seeded From UniProt

complete

involved_in

GO:0007389

pattern specification process

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:1338938
MGI:MGI:87912
PANTHER:PTN000583675

P

Seeded From UniProt

complete

involved_in

GO:0007179

transforming growth factor beta receptor signaling pathway

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

FB:FBgn0003716
MGI:MGI:1338946
MGI:MGI:87911
MGI:MGI:98728
MGI:MGI:98729
PANTHER:PTN000583675
RGD:3852
RGD:620200
RGD:69651
RGD:70964
UniProtKB:A0A0B4KG59
UniProtKB:P36897
UniProtKB:P37023
UniProtKB:P37173
UniProtKB:Q04771
UniProtKB:Q06900
UniProtKB:Q90ZK6

P

Seeded From UniProt

complete

part_of

GO:0005887

integral component of plasma membrane

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:87911
PANTHER:PTN000583675
RGD:69651
RGD:70964
UniProtKB:P36896
UniProtKB:P37023
UniProtKB:Q04771
UniProtKB:Q13873

C

Seeded From UniProt

complete

enables

GO:0005025

transforming growth factor beta receptor activity, type I

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:87911
PANTHER:PTN002356032
UniProtKB:A0A0B4K7J3
UniProtKB:P37023
UniProtKB:Q90ZK6

F

Seeded From UniProt

complete

enables

GO:0005024

transforming growth factor beta-activated receptor activity

PMID:21873635[28]

ECO:0000318

biological aspect of ancestor evidence used in manual assertion

MGI:MGI:98728
MGI:MGI:98729
PANTHER:PTN000583675
UniProtKB:A0A0B4KG59
UniProtKB:P36897
UniProtKB:P37023
UniProtKB:P37173
ZFIN:ZDB-GENE-070618-1

F

Seeded From UniProt

complete

involved_in

GO:0032924

activin receptor signaling pathway

GO_REF:0000108

ECO:0000364

evidence based on logical inference from manual annotation used in automatic assertion

GO:0016361

P

Seeded From UniProt

complete

enables

GO:0004672

protein kinase activity

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000719
InterPro:IPR001245
InterPro:IPR008271

F

Seeded From UniProt

complete

enables

GO:0004675

transmembrane receptor protein serine/threonine kinase activity

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000333
InterPro:IPR003605

F

Seeded From UniProt

complete

enables

GO:0005524

ATP binding

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000333
InterPro:IPR000719
InterPro:IPR003605
InterPro:IPR017441

F

Seeded From UniProt

complete

involved_in

GO:0006468

protein phosphorylation

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000719
InterPro:IPR001245
InterPro:IPR003605
InterPro:IPR008271

P

Seeded From UniProt

complete

involved_in

GO:0007178

transmembrane receptor protein serine/threonine kinase signaling pathway

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000333

P

Seeded From UniProt

complete

part_of

GO:0016020

membrane

GO_REF:0000002

ECO:0000256

match to sequence model evidence used in automatic assertion

InterPro:IPR000333
InterPro:IPR003605

C

Seeded From UniProt

complete

part_of

GO:0016020

membrane

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0472

C

Seeded From UniProt

complete

enables

GO:0016301

kinase activity

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0418

F

Seeded From UniProt

complete

enables

GO:0000166

nucleotide binding

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0547

F

Seeded From UniProt

complete

involved_in

GO:0016310

phosphorylation

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0418

P

Seeded From UniProt

complete

enables

GO:0016740

transferase activity

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0808

F

Seeded From UniProt

complete

enables

GO:0005524

ATP binding

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0067

F

Seeded From UniProt

complete

enables

GO:0004674

protein serine/threonine kinase activity

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0723

F

Seeded From UniProt

complete

part_of

GO:0016021

integral component of membrane

GO_REF:0000038

ECO:0000323

imported automatically asserted information used in automatic assertion

UniProtKB-KW:KW-0812

C

Seeded From UniProt

complete

Notes

References

See Help:References for how to manage references in GONUTS.

  1. 1.0 1.1 1.2 Little, SC & Mullins, MC (2009) Bone morphogenetic protein heterodimers assemble heteromeric type I receptor complexes to pattern the dorsoventral axis. Nat. Cell Biol. 11 637-43 PubMed GONUTS page
  2. 2.0 2.1 2.2 Lenhart, KF et al. (2011) Two additional midline barriers function with midline lefty1 expression to maintain asymmetric Nodal signaling during left-right axis specification in zebrafish. Development 138 4405-10 PubMed GONUTS page
  3. 3.0 3.1 3.2 von der Hardt, S et al. (2007) The Bmp gradient of the zebrafish gastrula guides migrating lateral cells by regulating cell-cell adhesion. Curr. Biol. 17 475-87 PubMed GONUTS page
  4. 4.0 4.1 4.2 Payne-Ferreira, TL & Yelick, PC (2003) Alk8 is required for neural crest cell formation and development of pharyngeal arch cartilages. Dev. Dyn. 228 683-96 PubMed GONUTS page
  5. 5.0 5.1 Marques, SR & Yelon, D (2009) Differential requirement for BMP signaling in atrial and ventricular lineages establishes cardiac chamber proportionality. Dev. Biol. 328 472-82 PubMed GONUTS page
  6. 6.0 6.1 6.2 6.3 6.4 Payne, TL et al. (2001) Functional characterization and genetic mapping of alk8. Mech. Dev. 100 275-89 PubMed GONUTS page
  7. Mullins, MC et al. (1996) Genes establishing dorsoventral pattern formation in the zebrafish embryo: the ventral specifying genes. Development 123 81-93 PubMed GONUTS page
  8. Tucker, JA et al. (2008) The BMP signaling gradient patterns dorsoventral tissues in a temporally progressive manner along the anteroposterior axis. Dev. Cell 14 108-19 PubMed GONUTS page
  9. 9.0 9.1 Hogan, BM et al. (2006) Specification of the primitive myeloid precursor pool requires signaling through Alk8 in zebrafish. Curr. Biol. 16 506-11 PubMed GONUTS page
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