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FB:Rho1

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Contents

Species (Taxon ID) Drosophila melanogaster (fruit fly) (taxon:7227)
Gene Name(s) Rho1 ( synonyms: 8416, AAF01186, CG8416, D-Rho1, DRho, DRho1, DRhoA, Dm Rho1, DmRHO-A, Drho1, DrhoA, E3.10/J3.8, RHO, RHO1, Rho, Rho A, Rho GTPase, Rho kinase, RhoA, RhoN19, dRho1, dRhoA, dnRho, l(2)52Fa, l(2)k02107b, n(2)k07236, rho, rho kinase, rho1, rho1 kinase, rhoA )
Protein Name(s) Rho1,
External Links
FB FBgn0014020

Annotations

Qualifier GO ID GO term name Reference Evidence Code with/from Aspect Notes Status
GO:0000910

cytokinesis

FB:FBrf0151414
PMID:12134082[1]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0000910

cytokinesis

FB:FBrf0167741
PMID:14527345[2]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0000910

cytokinesis

FB:FBrf0180064
PMID:15380073[3]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0000910

cytokinesis

FB:FBrf0180476
PMID:15547975[4]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0000910

cytokinesis

FB:FBrf0191432
PMID:16174742[5]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0001736

establishment of planar polarity

FB:FBrf0156094
PMID:12414186[6]

NAS: Non-traceable Author Statement

P

From FB

GO:0001736

establishment of planar polarity

FB:FBrf0156198
PMID:12137730[7]

TAS: Traceable Author Statement

P

From FB

GO:0001737

establishment of imaginal disc-derived wing hair orientation

FB:FBrf0110443
PMID:10449347[8]

TAS: Traceable Author Statement

P

From FB

GO:0001745

compound eye morphogenesis

FB:FBrf0202887
PMID:18166433[9]

IGI: Inferred from Genetic Interaction

FB:FBgn0260799

P

From FB

GO:0003924

GTPase activity

FB:FBrf0105495

ISS: Inferred from Sequence or Structural Similarity

EMBL:AF014371

F

From FB

GO:0003924

GTPase activity

FB:FBrf0110443
PMID:10449347[8]

NAS: Non-traceable Author Statement

F

From FB

GO:0003924

GTPase activity

FB:FBrf0124058

NAS: Non-traceable Author Statement

F

From FB

GO:0003924

GTPase activity

FB:FBrf0128589
PMID:10847683[10]

TAS: Traceable Author Statement

F

From FB

GO:0003924

GTPase activity

FB:FBrf0173281
PMID:14579253[11]

ISS: Inferred from Sequence or Structural Similarity

F

From FB

GO:0005515

protein binding

FB:FBrf0111979
PMID:10570971[12]

IPI: Inferred from Physical Interaction

FB:FBgn0026181

F

From FB

GO:0005515

protein binding

FB:FBrf0208460
PMID:19633175[13]

IPI: Inferred from Physical Interaction

FB:FBgn0033692

F

From FB

GO:0005525

GTP binding

FB:FBrf0174215

IEA: Inferred from Electronic Annotation

InterPro:IPR001806
InterPro:IPR003578
InterPro:IPR005225

F

From FB

GO:0005737

cytoplasm

FB:FBrf0208582
PMID:19576201[14]

IDA: Inferred from Direct Assay

C

From FB

GO:0005938

cell cortex

FB:FBrf0191267
PMID:16518391[15]

IDA: Inferred from Direct Assay

C

From FB

GO:0006897

endocytosis

FB:FBrf0183149
PMID:15649467[16]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0006974

response to DNA damage stimulus

FB:FBrf0208272
PMID:19543366[17]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007010

cytoskeleton organization

FB:FBrf0149002
PMID:12000787[18]

TAS: Traceable Author Statement

P

From FB

GO:0007015

actin filament organization

FB:FBrf0167741
PMID:14527345[2]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007015

actin filament organization

FB:FBrf0208582
PMID:19576201[14]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007164

establishment of tissue polarity

FB:FBrf0149002
PMID:12000787[18]

NAS: Non-traceable Author Statement

P

From FB

GO:0007173

epidermal growth factor receptor signaling pathway

FB:FBrf0195282
PMID:16818611[19]

IGI: Inferred from Genetic Interaction

FB:FBgn0086901

P

From FB

GO:0007254

JNK cascade

FB:FBrf0110443
PMID:10449347[8]

NAS: Non-traceable Author Statement

P

From FB

GO:0007264

small GTPase mediated signal transduction

FB:FBrf0174215

IEA: Inferred from Electronic Annotation

InterPro:IPR001806
InterPro:IPR003578

P

From FB

GO:0007298

border follicle cell migration

FB:FBrf0200679
PMID:17652348[20]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007349

cellularization

FB:FBrf0151773
PMID:12386932[21]

TAS: Traceable Author Statement

P

From FB

GO:0007349

cellularization

FB:FBrf0184065
PMID:15699213[22]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007368

determination of left/right symmetry

FB:FBrf0205051
PMID:18836316[23]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007369

gastrulation

FB:FBrf0110176
PMID:10369659[24]

NAS: Non-traceable Author Statement

P

From FB

GO:0007370

ventral furrow formation

FB:FBrf0099954
PMID:9428514[25]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007374

posterior midgut invagination

FB:FBrf0099954
PMID:9428514[25]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007377

germ-band extension

FB:FBrf0099954
PMID:9428514[25]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007391

dorsal closure

FB:FBrf0110443
PMID:10449347[8]

TAS: Traceable Author Statement

P

From FB

GO:0007391

dorsal closure

FB:FBrf0148970
PMID:12070092[26]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007391

dorsal closure

FB:FBrf0149002
PMID:12000787[18]

TAS: Traceable Author Statement

P

From FB

GO:0007391

dorsal closure

FB:FBrf0151280
PMID:12147138[27]

TAS: Traceable Author Statement

P

From FB

GO:0007395

dorsal closure, spreading of leading edge cells

FB:FBrf0151835
PMID:12176336[28]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007405

neuroblast proliferation

FB:FBrf0127188
PMID:10719887[29]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007411

axon guidance

FB:FBrf0155484
PMID:12453459[30]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007422

peripheral nervous system development

FB:FBrf0158880
PMID:12642488[31]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007422

peripheral nervous system development

FB:FBrf0162204
PMID:12967983[32]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007424

open tracheal system development

FB:FBrf0190308
PMID:16469972[33]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007424

open tracheal system development

FB:FBrf0194228
PMID:17113384[34]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0007435

salivary gland morphogenesis

FB:FBrf0206881
PMID:18585373[35]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0008045

motor axon guidance

FB:FBrf0155635
PMID:11891122[36]

NAS: Non-traceable Author Statement

P

From FB

GO:0008045

motor axon guidance

FB:FBrf0200818
PMID:17568577[37]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0008347

glial cell migration

FB:FBrf0158880
PMID:12642488[31]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0008354

germ cell migration

FB:FBrf0174508
PMID:15108810[38]

TAS: Traceable Author Statement

P

From FB

GO:0010004

gastrulation involving germ band extension

FB:FBrf0099954
PMID:9428514[25]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0016055

Wnt receptor signaling pathway

FB:FBrf0155643
PMID:12231350[39]

NAS: Non-traceable Author Statement

P

From FB

GO:0016318

ommatidial rotation

FB:FBrf0110443
PMID:10449347[8]

TAS: Traceable Author Statement

P

From FB

GO:0016318

ommatidial rotation

FB:FBrf0149002
PMID:12000787[18]

NAS: Non-traceable Author Statement

P

From FB

GO:0016476

regulation of embryonic cell shape

FB:FBrf0206881
PMID:18585373[35]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0019900

kinase binding

FB:FBrf0135688
PMID:11301004[40]

IPI: Inferred from Physical Interaction

FB:FBgn0026181

F

From FB

GO:0030036

actin cytoskeleton organization

FB:FBrf0141280
PMID:11700288[41]

TAS: Traceable Author Statement

P

From FB

GO:0030036

actin cytoskeleton organization

FB:FBrf0184065
PMID:15699213[22]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0030589

pseudocleavage involved in syncytial blastoderm formation

FB:FBrf0207596
PMID:19279137[42]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035006

melanization defense response

FB:FBrf0192653
PMID:17356067[43]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035099

hemocyte migration

FB:FBrf0184064
PMID:15699212[44]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035147

branch fusion, open tracheal system

FB:FBrf0174508
PMID:15108810[38]

TAS: Traceable Author Statement

P

From FB

GO:0035149

lumen formation, open tracheal system

FB:FBrf0144831
PMID:11880359[45]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035149

lumen formation, open tracheal system

FB:FBrf0167264
PMID:14570584[46]

TAS: Traceable Author Statement

P

From FB

GO:0035159

regulation of tube length, open tracheal system

FB:FBrf0209469
PMID:19956736[47]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035277

spiracle morphogenesis, open tracheal system

FB:FBrf0192475
PMID:17021037[48]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035298

regulation of Malpighian tubule size

FB:FBrf0187455
PMID:15843408[49]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0035317

imaginal disc-derived wing hair organization

FB:FBrf0135688
PMID:11301004[40]

IGI: Inferred from Genetic Interaction

FB:FBgn0001085

P

From FB

GO:0035317

imaginal disc-derived wing hair organization

FB:FBrf0208582
PMID:19576201[14]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0042060

wound healing

FB:FBrf0152249
PMID:12402048[50]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0045184

establishment of protein localization

FB:FBrf0191432
PMID:16174742[5]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0045199

maintenance of epithelial cell apical/basal polarity

FB:FBrf0206881
PMID:18585373[35]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0046663

dorsal closure, leading edge cell differentiation

FB:FBrf0151835
PMID:12176336[28]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0048813

dendrite morphogenesis

FB:FBrf0159339
PMID:12744843[51]

TAS: Traceable Author Statement

P

From FB

GO:0050770

regulation of axonogenesis

FB:FBrf0180582
PMID:15572110[52]

IGI: Inferred from Genetic Interaction

FB:FBgn0041203

P

From FB

GO:0051017

actin filament bundle assembly

FB:FBrf0152249
PMID:12402048[50]

IMP: Inferred from Mutant Phenotype

P

From FB

GO:0051493

regulation of cytoskeleton organization

FB:FBrf0208460
PMID:19633175[13]

IDA: Inferred from Direct Assay

P

From FB

GO:0070451

cell hair

FB:FBrf0208582
PMID:19576201[14]

IDA: Inferred from Direct Assay

C

From FB

GO:0070593

dendrite self-avoidance

FB:FBrf0215818
PMID:21937715[53]

IGI: Inferred from Genetic Interaction

FB:FBgn0024836

P

From FB

GO:0090254

cell elongation involved in imaginal disc-derived wing morphogenesis

FB:FBrf0207672
PMID:19366729[54]

IMP: Inferred from Mutant Phenotype

P

From FB

NOT

GO:0016203

muscle attachment

FB:FBrf0141473
PMID:11784030[55]

IMP: Inferred from Mutant Phenotype

P

From FB

NOT

GO:0030239

myofibril assembly

FB:FBrf0141473
PMID:11784030[55]

IMP: Inferred from Mutant Phenotype

P

From FB

NOT

GO:0046664

dorsal closure, amnioserosa morphology change

FB:FBrf0147105
PMID:11973353[56]

IMP: Inferred from Mutant Phenotype

P

From FB


Notes

References

See Help:References for how to manage references in GONUTS.
  1. Somma MP et al. (2002) Molecular dissection of cytokinesis by RNA interference in Drosophila cultured cells. Mol Biol Cell 13: 2448-60 PubMed GONUTS page
  2. 2.0 2.1 Kiger AA et al. (2003) A functional genomic analysis of cell morphology using RNA interference. J Biol 2: 27 PubMed GONUTS page
  3. Echard A et al. (2004) Terminal cytokinesis events uncovered after an RNAi screen. Curr Biol 14: 1685-93 PubMed GONUTS page
  4. Eggert US et al. (2004) Parallel chemical genetic and genome-wide RNAi screens identify cytokinesis inhibitors and targets. PLoS Biol 2: e379 PubMed GONUTS page
  5. 5.0 5.1 Dean SO et al. (2005) Distinct pathways control recruitment and maintenance of myosin II at the cleavage furrow during cytokinesis. Proc Natl Acad Sci U S A 102: 13473-8 PubMed GONUTS page
  6. Mlodzik M (2002) Planar cell polarization: do the same mechanisms regulate Drosophila tissue polarity and vertebrate gastrulation? Trends Genet 18: 564-71 PubMed GONUTS page
  7. Tree DR et al. (2002) A three-tiered mechanism for regulation of planar cell polarity. Semin Cell Dev Biol 13: 217-24 PubMed GONUTS page
  8. 8.0 8.1 8.2 8.3 8.4 Noselli S & Agnès F (1999) Roles of the JNK signaling pathway in Drosophila morphogenesis. Curr Opin Genet Dev 9: 466-72 PubMed GONUTS page
  9. Larson DE et al. (2008) Cellular behavior in the developing Drosophila pupal retina. Mech Dev 125: 223-32 PubMed GONUTS page
  10. Newsome TP et al. (2000) Trio combines with dock to regulate Pak activity during photoreceptor axon pathfinding in Drosophila. Cell 101: 283-94 PubMed GONUTS page
  11. Jékely G (2003) Small GTPases and the evolution of the eukaryotic cell. Bioessays 25: 1129-38 PubMed GONUTS page
  12. Mizuno T et al. (1999) Identification and characterization of Drosophila homolog of Rho-kinase. Gene 238: 437-44 PubMed GONUTS page
  13. 13.0 13.1 Liu R et al. (2009) Wash functions downstream of Rho and links linear and branched actin nucleation factors. Development 136: 2849-60 PubMed GONUTS page
  14. 14.0 14.1 14.2 14.3 Yan J et al. (2009) Rho1 has multiple functions in Drosophila wing planar polarity. Dev Biol 333: 186-99 PubMed GONUTS page
  15. Rosales-Nieves AE et al. (2006) Coordination of microtubule and microfilament dynamics by Drosophila Rho1, Spire and Cappuccino. Nat Cell Biol 8: 367-76 PubMed GONUTS page
  16. Magie CR & Parkhurst SM (2005) Rho1 regulates signaling events required for proper Drosophila embryonic development. Dev Biol 278: 144-54 PubMed GONUTS page
  17. Ravi D et al. (2009) A network of conserved damage survival pathways revealed by a genomic RNAi screen. PLoS Genet 5: e1000527 PubMed GONUTS page
  18. 18.0 18.1 18.2 18.3 Van Aelst L & Symons M (2002) Role of Rho family GTPases in epithelial morphogenesis. Genes Dev 16: 1032-54 PubMed GONUTS page
  19. Brodu V & Casanova J (2006) The RhoGAP crossveinless-c links trachealess and EGFR signaling to cell shape remodeling in Drosophila tracheal invagination. Genes Dev 20: 1817-28 PubMed GONUTS page
  20. Bastock R & Strutt D (2007) The planar polarity pathway promotes coordinated cell migration during Drosophila oogenesis. Development 134: 3055-64 PubMed GONUTS page
  21. Mazumdar A & Mazumdar M (2002) How one becomes many: blastoderm cellularization in Drosophila melanogaster. Bioessays 24: 1012-22 PubMed GONUTS page
  22. 22.0 22.1 Padash Barmchi M et al. (2005) DRhoGEF2 regulates actin organization and contractility in the Drosophila blastoderm embryo. J Cell Biol 168: 575-85 PubMed GONUTS page
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  25. 25.0 25.1 25.2 25.3 Barrett K et al. (1997) The Rho GTPase and a putative RhoGEF mediate a signaling pathway for the cell shape changes in Drosophila gastrulation. Cell 91: 905-15 PubMed GONUTS page
  26. Bloor JW & Kiehart DP (2002) Drosophila RhoA regulates the cytoskeleton and cell-cell adhesion in the developing epidermis. Development 129: 3173-83 PubMed GONUTS page
  27. Harden N (2002) Signaling pathways directing the movement and fusion of epithelial sheets: lessons from dorsal closure in Drosophila. Differentiation 70: 181-203 PubMed GONUTS page
  28. 28.0 28.1 Jacinto A et al. (2002) Dynamic analysis of actin cable function during Drosophila dorsal closure. Curr Biol 12: 1245-50 PubMed GONUTS page
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  32. Sepp KJ & Auld VJ (2003) Reciprocal interactions between neurons and glia are required for Drosophila peripheral nervous system development. J Neurosci 23: 8221-30 PubMed GONUTS page
  33. Matusek T et al. (2006) The Drosophila formin DAAM regulates the tracheal cuticle pattern through organizing the actin cytoskeleton. Development 133: 957-66 PubMed GONUTS page
  34. Lovegrove B et al. (2006) Coordinated control of cell adhesion, polarity, and cytoskeleton underlies Hox-induced organogenesis in Drosophila. Curr Biol 16: 2206-16 PubMed GONUTS page
  35. 35.0 35.1 35.2 Xu N et al. (2008) Rho GTPase controls invagination and cohesive migration of the Drosophila salivary gland through Crumbs and Rho-kinase. Dev Biol 321: 88-100 PubMed GONUTS page
  36. Patel BN & Van Vactor DL (2002) Axon guidance: the cytoplasmic tail. Curr Opin Cell Biol 14: 221-9 PubMed GONUTS page
  37. Dorsten JN et al. (2007) Frazzled regulation of myosin II activity in the Drosophila embryonic CNS. Dev Biol 308: 120-32 PubMed GONUTS page
  38. 38.0 38.1 Starz-Gaiano M & Montell DJ (2004) Genes that drive invasion and migration in Drosophila. Curr Opin Genet Dev 14: 86-91 PubMed GONUTS page
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  40. 40.0 40.1 Winter CG et al. (2001) Drosophila Rho-associated kinase (Drok) links Frizzled-mediated planar cell polarity signaling to the actin cytoskeleton. Cell 105: 81-91 PubMed GONUTS page
  41. Johnstone O & Lasko P (2001) Translational regulation and RNA localization in Drosophila oocytes and embryos. Annu Rev Genet 35: 365-406 PubMed GONUTS page
  42. Webb RL et al. (2009) A novel role for an APC2-Diaphanous complex in regulating actin organization in Drosophila. Development 136: 1283-93 PubMed GONUTS page
  43. Bidla G et al. (2007) Crystal cell rupture after injury in Drosophila requires the JNK pathway, small GTPases and the TNF homolog Eiger. J Cell Sci 120: 1209-15 PubMed GONUTS page
  44. Stramer B et al. (2005) Live imaging of wound inflammation in Drosophila embryos reveals key roles for small GTPases during in vivo cell migration. J Cell Biol 168: 567-73 PubMed GONUTS page
  45. Lee S & Kolodziej PA (2002) The plakin Short Stop and the RhoA GTPase are required for E-cadherin-dependent apical surface remodeling during tracheal tube fusion. Development 129: 1509-20 PubMed GONUTS page
  46. Ghabrial A et al. (2003) Branching morphogenesis of the Drosophila tracheal system. Annu Rev Cell Dev Biol 19: 623-47 PubMed GONUTS page
  47. Chung S et al. (2009) Serrano (sano) functions with the planar cell polarity genes to control tracheal tube length. PLoS Genet 5: e1000746 PubMed GONUTS page
  48. Simões S et al. (2006) Compartmentalisation of Rho regulators directs cell invagination during tissue morphogenesis. Development 133: 4257-67 PubMed GONUTS page
  49. Denholm B et al. (2005) crossveinless-c is a RhoGAP required for actin reorganisation during morphogenesis. Development 132: 2389-400 PubMed GONUTS page
  50. 50.0 50.1 Wood W et al. (2002) Wound healing recapitulates morphogenesis in Drosophila embryos. Nat Cell Biol 4: 907-12 PubMed GONUTS page
  51. Gao FB & Bogert BA (2003) Genetic control of dendritic morphogenesis in Drosophila. Trends Neurosci 26: 262-8 PubMed GONUTS page
  52. Ng J & Luo L (2004) Rho GTPases regulate axon growth through convergent and divergent signaling pathways. Neuron 44: 779-93 PubMed GONUTS page
  53. Matsubara D et al. (2011) The seven-pass transmembrane cadherin Flamingo controls dendritic self-avoidance via its binding to a LIM domain protein, Espinas, in Drosophila sensory neurons. Genes Dev 25: 1982-96 PubMed GONUTS page
  54. Widmann TJ & Dahmann C (2009) Dpp signaling promotes the cuboidal-to-columnar shape transition of Drosophila wing disc epithelia by regulating Rho1. J Cell Sci 122: 1362-73 PubMed GONUTS page
  55. 55.0 55.1 Bloor JW & Kiehart DP (2001) zipper Nonmuscle myosin-II functions downstream of PS2 integrin in Drosophila myogenesis and is necessary for myofibril formation. Dev Biol 239: 215-28 PubMed GONUTS page
  56. Harden N et al. (2002) Drac1 and Crumbs participate in amnioserosa morphogenesis during dorsal closure in Drosophila. J Cell Sci 115: 2119-29 PubMed GONUTS page
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