FOG04045
EOG8CVDPH

sce:absent

Genes: 11

AspGD Description
Protein similar to velB


References

Ni M, et al. (2007 Oct 3). A novel regulator couples sporogenesis and trehalose biogenesis in Aspergillus nidulans.

Calvo AM, et al. (2008 Jul). The VeA regulatory system and its role in morphological and chemical development in fungi.

Bayram O, et al. (2008 Jun 13). VelB/VeA/LaeA complex coordinates light signal with fungal development and secondary metabolism.

Fischer R, et al. (2008 Jun 13). Developmental biology. Sex and poison in the dark.

Brakhage AA, et al. (2009 Oct-Nov). Aspects on evolution of fungal beta-lactam biosynthesis gene clusters and recruitment of trans-acting factors.

Braus GH, et al. (2010 Dec). Fungal development and the COP9 signalosome.

Etxebeste O, et al. (2010 Dec). Aspergillus nidulans asexual development: making the most of cellular modules.

Sarikaya Bayram O, et al. (2010 Dec 2). LaeA control of velvet family regulatory proteins for light-dependent development and fungal cell-type specificity.

Bayram O, et al. (2012). Identification of protein complexes from filamentous fungi with tandem affinity purification.

Jeong KC, et al. (2012). Investigation of in vivo protein interactions in Aspergillus spores.

Park HS, et al. (2012). The role, interaction and regulation of the velvet regulator VelB in Aspergillus nidulans.

Jiang J, et al. (2012 Aug). FgVELB is associated with vegetative differentiation, secondary metabolism and virulence in Fusarium graminearum.

Park HS, et al. (2012 Dec). Genetic control of asexual sporulation in filamentous fungi.

Bayram O, et al. (2012 Jan). Coordination of secondary metabolism and development in fungi: the velvet family of regulatory proteins.

Dyer PS, et al. (2012 Jan). Sexual development and cryptic sexuality in fungi: insights from Aspergillus species.

Karimi-Aghcheh R, et al. (2013 Feb). Functional analyses of Trichoderma reesei LAE1 reveal conserved and contrasting roles of this regulator.

Gibbons JG, et al. (2013 Jan). The function and evolution of the Aspergillus genome.

Krijgsheld P, et al. (2013 Mar 15). Development in Aspergillus.

Chang PK, et al. (2013 Sep-Oct). Aspergillus flavus VelB acts distinctly from VeA in conidiation and may coordinate with FluG to modulate sclerotial production.

Karimi Aghcheh R, et al. (2014). The VELVET A orthologue VEL1 of Trichoderma reesei regulates fungal development and is essential for cellulase gene expression.

Park HS, et al. (2014). VelC positively controls sexual development in Aspergillus nidulans.

Park HS, et al. (2015 May 11). Velvet-mediated repression of β-glucan synthesis in Aspergillus nidulans spores.

Mitochondrial localization predictions
Predotar TargetP MitoProt
Raw data
Phobius transmembrane predictions
0 genes with posterior transmembrane prediction > 50%


FOG04046
EOG8CVDPH

sce:absent

Genes: 5
 





 
Mitochondrial localization predictions
Predotar TargetP MitoProt
Raw data
Phobius transmembrane predictions
0 genes with posterior transmembrane prediction > 50%


FOG04047
EOG8CVDPH

sce:absent

Genes: 3

AspGD Description
Ortholog(s) have role in ascospore formation, asexual sporulation resulting in formation of a cellular spore, carotenoid biosynthetic process and cellular response to blue light, more


References

Käfer E, et al. (1965 Jul). Origins of translocations in Aspergillus nidulans.

Clutterbuck AJ, et al. (1973 Jun). Gene symbols in Aspergillus nidulans.

Purnell DM, et al. (1978 Dec 18). Virulence genetics of Aspergillus nidulans Eidam: a review.

Timberlake WE, et al. (1990). Molecular genetics of Aspergillus development.

Mooney JL, et al. (1990 Dec). Genetic analysis of suppressors of the veA1 mutation in Aspergillus nidulans.

Mooney JL, et al. (1990 Sep). Light is required for conidiation in Aspergillus nidulans.

Timberlake WE, et al. (1991 Oct). Temporal and spatial controls of Aspergillus development.

Yager LN, et al. (1992). Early developmental events during asexual and sexual sporulation in Aspergillus nidulans.

Timberlake WE, et al. (1994). Genetic regulation of conidiation.

Clutterbuck AJ, et al. (1997 Jun). The validity of the Aspergillus nidulans linkage map.

Yager LN, et al. (1998 Aug). Analysis of fluG mutations that affect light-dependent conidiation in Aspergillus nidulans.

Guzmán-de-Peña D, et al. (1998 Feb). Correlation between the regulation of sterigmatocystin biosynthesis and asexual and sexual sporulation in Emericella nidulans.

Adams TH, et al. (1998 Mar). Asexual sporulation in Aspergillus nidulans.

Calvo AM, et al. (1999 Aug). Sporogenic effect of polyunsaturated fatty acids on development of Aspergillus spp.

Jeong HY, et al. (2000 Nov). The rpl16a gene for ribosomal protein L16A identified from expressed sequence tags is differentially expressed during sexual development of Aspergillus nidulans.

Han KH, et al. (2001 Jul). The nsdD gene encodes a putative GATA-type transcription factor necessary for sexual development of Aspergillus nidulans.

Calvo AM, et al. (2001 Jul 13). Genetic connection between fatty acid metabolism and sporulation in Aspergillus nidulans.

Lee DW, et al. (2001 Jun). The IsdA gene is necessary for sexual development inhibition by a salt in Aspergillus nidulans.

Jeong HY, et al. (2002 Nov). The veA gene is necessary for the inducible expression by fructosyl amines of the Aspergillus nidulans faoA gene encoding fructosyl amino acid oxidase (amadoriase, EC 1.5.3).

Kim H, et al. (2002 Oct). The veA gene activates sexual development in Aspergillus nidulans.

Busch S, et al. (2003 Aug). The COP9 signalosome is an essential regulator of development in the filamentous fungus Aspergillus nidulans.

Kato N, et al. (2003 Dec). The expression of sterigmatocystin and penicillin genes in Aspergillus nidulans is controlled by veA, a gene required for sexual development.

Jeong HY, et al. (2003 Mar). Expression of the mnpA gene that encodes the mannoprotein of Aspergillus nidulans is dependent on fadA and flbA as well as veA.

Brakhage AA, et al. (2004). Regulation of penicillin biosynthesis in filamentous fungi.

Calvo AM, et al. (2004 Aug). veA is required for toxin and sclerotial production in Aspergillus parasiticus.

Han KH, et al. (2004 Mar). A putative G protein-coupled receptor negatively controls sexual development in Aspergillus nidulans.

Tsitsigiannis DI, et al. (2004 Mar 19). The lipid body protein, PpoA, coordinates sexual and asexual sporulation in Aspergillus nidulans.

Vienken K, et al. (2005 Feb). The Zn(II)2Cys6 putative Aspergillus nidulans transcription factor repressor of sexual development inhibits sexual development under low-carbon conditions and in submersed culture.

Tsitsigiannis DI, et al. (2005 Jun). Three putative oxylipin biosynthetic genes integrate sexual and asexual development in Aspergillus nidulans.

Li S, et al. (2006 Dec). FvVE1 regulates filamentous growth, the ratio of microconidia to macroconidia and cell wall formation in Fusarium verticillioides.

Vienken K, et al. (2006 Jul). The Zn(II)2Cys6 putative transcription factor NosA controls fruiting body formation in Aspergillus nidulans.

Cary JW, et al. (2006 Jun). Regulatory elements in aflatoxin biosynthesis.

Todd RB, et al. (2006 Nov). The Aspergillus nidulans rcoA gene is required for veA-dependent sexual development.

Hatakeyama R, et al. (2007 Aug). Light represses conidiation in koji mold Aspergillus oryzae.

Stinnett SM, et al. (2007 Jan). Aspergillus nidulans VeA subcellular localization is dependent on the importin alpha carrier and on light.

Corrochano LM, et al. (2007 Jul). Fungal photoreceptors: sensory molecules for fungal development and behaviour.

Spröte P, et al. (2007 Jul). The light-dependent regulator velvet A of Aspergillus nidulans acts as a repressor of the penicillin biosynthesis.

Dreyer J, et al. (2007 May). A homologue of the Aspergillus velvet gene regulates both cephalosporin C biosynthesis and hyphal fragmentation in Acremonium chrysogenum.

Ni M, et al. (2007 Oct 3). A novel regulator couples sporogenesis and trehalose biogenesis in Aspergillus nidulans.

Bayram O, et al. (2008 Aug). More than a repair enzyme: Aspergillus nidulans photolyase-like CryA is a regulator of sexual development.

Bayram O, et al. (2008 Feb). Neurospora crassa ve-1 affects asexual conidiation.

Purschwitz J, et al. (2008 Feb 26). Functional and physical interaction of blue- and red-light sensors in Aspergillus nidulans.

Calvo AM, et al. (2008 Jul). The VeA regulatory system and its role in morphological and chemical development in fungi.

Bayram O, et al. (2008 Jun 13). VelB/VeA/LaeA complex coordinates light signal with fungal development and secondary metabolism.

Fischer R, et al. (2008 Jun 13). Developmental biology. Sex and poison in the dark.

Han KH, et al. (2008 Mar). The Aspergillus nidulans esdC (early sexual development) gene is necessary for sexual development and is controlled by veA and a heterotrimeric G protein.

Hynes MJ, et al. (2008 Mar). Genetic analysis of the role of peroxisomes in the utilization of acetate and fatty acids in Aspergillus nidulans.

Kale SP, et al. (2008 Oct). Requirement of LaeA for secondary metabolism and sclerotial production in Aspergillus flavus.

Kim HY, et al. (2009 Aug). The veA gene is necessary for the negative regulation of the veA expression in Aspergillus nidulans.

Purschwitz J, et al. (2009 Jan). Mapping the interaction sites of Aspergillus nidulans phytochrome FphA with the global regulator VeA and the White Collar protein LreB.

Amaike S, et al. (2009 Jul). Distinct roles for VeA and LaeA in development and pathogenesis of Aspergillus flavus.

Kim HR, et al. (2009 Jul). The nsdC gene encoding a putative C2H2-type transcription factor is a key activator of sexual development in Aspergillus nidulans.

Myung K, et al. (2009 Jun 10). FvVE1 regulates biosynthesis of the mycotoxins fumonisins and fusarins in Fusarium verticillioides.

Araújo-Bazán L, et al. (2009 Jun-Jul). Importin alpha is an essential nuclear import carrier adaptor required for proper sexual and asexual development and secondary metabolism in Aspergillus nidulans.

Bayram O, et al. (2009 Mar). The protein kinase ImeB is required for light-mediated inhibition of sexual development and for mycotoxin production in Aspergillus nidulans.

Harris SD, et al. (2009 Mar). Morphology and development in Aspergillus nidulans: a complex puzzle.

Chanda A, et al. (2009 Nov 17). A key role for vesicles in fungal secondary metabolism.

Brakhage AA, et al. (2009 Oct-Nov). Aspects on evolution of fungal beta-lactam biosynthesis gene clusters and recruitment of trans-acting factors.

Han KH, et al. (2009 Sep). Molecular Genetics of Emericella nidulans Sexual Development.

Wiemann P, et al. (2010 Aug). FfVel1 and FfLae1, components of a velvet-like complex in Fusarium fujikuroi, affect differentiation, secondary metabolism and virulence.

Atoui A, et al. (2010 Dec). Cross-talk between light and glucose regulation controls toxin production and morphogenesis in Aspergillus nidulans.

Braus GH, et al. (2010 Dec). Fungal development and the COP9 signalosome.

Etxebeste O, et al. (2010 Dec). Aspergillus nidulans asexual development: making the most of cellular modules.

Han KH, et al. (2010 Dec). Simple identification of veA1 mutation in Aspergillus nidulans.

Shaaban MI, et al. (2010 Dec). Suppressor mutagenesis identifies a velvet complex remediator of Aspergillus nidulans secondary metabolism.

Sarikaya Bayram O, et al. (2010 Dec 2). LaeA control of velvet family regulatory proteins for light-dependent development and fungal cell-type specificity.

Bayram O, et al. (2010 Nov). Spotlight on Aspergillus nidulans photosensory systems.

Ruger-Herreros C, et al. (2011 Aug). Regulation of conidiation by light in Aspergillus nidulans.

Bayram O, et al. (2012). Identification of protein complexes from filamentous fungi with tandem affinity purification.

Bayram Ö, et al. (2012). The Aspergillus nidulans MAPK module AnSte11-Ste50-Ste7-Fus3 controls development and secondary metabolism.

Jiang J, et al. (2012 Aug). FgVELB is associated with vegetative differentiation, secondary metabolism and virulence in Fusarium graminearum.

Ramamoorthy V, et al. (2012 Aug). veA-dependent RNA-pol II transcription elongation factor-like protein, RtfA, is associated with secondary metabolism and morphological development in Aspergillus nidulans.

Park HS, et al. (2012 Dec). Genetic control of asexual sporulation in filamentous fungi.

Chettri P, et al. (2012 Feb). The veA gene of the pine needle pathogen Dothistroma septosporum regulates sporulation and secondary metabolism.

Bayram O, et al. (2012 Jan). Coordination of secondary metabolism and development in fungi: the velvet family of regulatory proteins.

Dyer PS, et al. (2012 Jan). Sexual development and cryptic sexuality in fungi: insights from Aspergillus species.

Merhej J, et al. (2012 May). The velvet gene, FgVe1, affects fungal development and positively regulates trichothecene biosynthesis and pathogenicity in Fusarium graminearum.

Park HS, et al. (2012 Nov). Characterization of the velvet regulators in Aspergillus fumigatus.

Laskowski-Peak MC, et al. (2012 Oct). VEA1 is required for cleistothecial formation and virulence in Histoplasma capsulatum.

Katz ME, et al. (2013). A p53-like transcription factor similar to Ndt80 controls the response to nutrient stress in the filamentous fungus, Aspergillus nidulans.

Kim HK, et al. (2013). Functional roles of FgLaeA in controlling secondary metabolism, sexual development, and virulence in Fusarium graminearum.

Kong Q, et al. (2013). Gβ-like CpcB plays a crucial role for growth and development of Aspergillus nidulans and Aspergillus fumigatus.

Palmer JM, et al. (2013). Secondary metabolism and development is mediated by LlmF control of VeA subcellular localization in Aspergillus nidulans.

Ramamoorthy V, et al. (2013). The putative C2H2 transcription factor MtfA is a novel regulator of secondary metabolism and morphogenesis in Aspergillus nidulans.

Shantappa S, et al. (2013). Role of the zinc finger transcription factor SltA in morphogenesis and sterigmatocystin biosynthesis in the fungus Aspergillus nidulans.

Lee JY, et al. (2013 Dec). A putative APSES transcription factor is necessary for normal growth and development of Aspergillus nidulans.

Garzia A, et al. (2013 Feb). Transcriptional changes in the transition from vegetative cells to asexual development in the model fungus Aspergillus nidulans.

Karimi-Aghcheh R, et al. (2013 Feb). Functional analyses of Trichoderma reesei LAE1 reveal conserved and contrasting roles of this regulator.

Gibbons JG, et al. (2013 Jan). The function and evolution of the Aspergillus genome.

Krijgsheld P, et al. (2013 Mar 15). Development in Aspergillus.

Sun X, et al. (2013 May). PyrG is required for maintaining stable cellular uracil level and normal sporulation pattern under excess uracil stress in Aspergillus nidulans.

Bok JW, et al. (2013 Sep). VeA and MvlA repression of the cryptic orsellinic acid gene cluster in Aspergillus nidulans involves histone 3 acetylation.

Chang PK, et al. (2013 Sep-Oct). Aspergillus flavus VelB acts distinctly from VeA in conidiation and may coordinate with FluG to modulate sclerotial production.

Karimi Aghcheh R, et al. (2014). The VELVET A orthologue VEL1 of Trichoderma reesei regulates fungal development and is essential for cellulase gene expression.

Park HS, et al. (2014). VelC positively controls sexual development in Aspergillus nidulans.

Tudzynski B, et al. (2014). Nitrogen regulation of fungal secondary metabolism in fungi.

Terfrüchte M, et al. (2014 Jan). Establishing a versatile Golden Gate cloning system for genetic engineering in fungi.

Yu Z, et al. (2014 Jul-Aug). A cyclin-like protein, ClgA, regulates development in Aspergillus nidulans.

Sarikaya-Bayram O, et al. (2014 May 27). Membrane-bound methyltransferase complex VapA-VipC-VapB guides epigenetic control of fungal development.

Alkahyyat F, et al. (2015). The WOPR Domain Protein OsaA Orchestrates Development in Aspergillus nidulans.

Calvo AM, et al. (2015). Association of fungal secondary metabolism and sclerotial biology.

Hedtke M, et al. (2015 Aug). Light-dependent gene activation in Aspergillus nidulans is strictly dependent on phytochrome and involves the interplay of phytochrome and white collar-regulated histone H3 acetylation.

Lind AL, et al. (2015 Mar). Examining the evolution of the regulatory circuit controlling secondary metabolism and development in the fungal genus Aspergillus.

Gacek-Matthews A, et al. (2015 May). KdmA, a histone H3 demethylase with bipartite function, differentially regulates primary and secondary metabolism in Aspergillus nidulans.

Mitochondrial localization predictions
Predotar TargetP MitoProt
Raw data
Phobius transmembrane predictions
0 genes with posterior transmembrane prediction > 50%


FOG04048
EOG8CVDPH

sce:absent

Genes: 2
 





 
Mitochondrial localization predictions
Predotar TargetP MitoProt
Raw data
Phobius transmembrane predictions
0 genes with posterior transmembrane prediction > 50%