FOG04209
EOG8280JQ

sce:absent

Genes: 19

References

Schweizer A, et al. (2000 Nov). The TEA/ATTS transcription factor CaTec1p regulates hyphal development and virulence in Candida albicans.

Lane S, et al. (2001 Dec 28). DNA array studies demonstrate convergent regulation of virulence factors by Cph1, Cph2, and Efg1 in Candida albicans.

Lane S, et al. (2001 Oct). The basic helix-loop-helix transcription factor Cph2 regulates hyphal development in Candida albicans partly via TEC1.

Staib P, et al. (2004 Apr). Tec1p-independent activation of a hypha-associated Candida albicans virulence gene during infection.

Nobile CJ, et al. (2005 Jun 21). Regulation of cell-surface genes and biofilm formation by the C. albicans transcription factor Bcr1p.

Bassilana M, et al. (2005 Mar). Regulation of the Cdc42/Cdc24 GTPase module during Candida albicans hyphal growth.

Biswas K, et al. (2005 May). The Mep2p ammonium permease controls nitrogen starvation-induced filamentous growth in Candida albicans.

Li F, et al. (2005 Nov-Dec). Identification of Candida albicans genes that induce Saccharomyces cerevisiae cell adhesion and morphogenesis.

Umeyama T, et al. (2006 May). Repression of CDC28 reduces the expression of the morphology-related transcription factors, Efg1p, Nrg1p, Rbf1p, Rim101p, Fkh2p and Tec1p and induces cell elongation in Candida albicans.

Argimón S, et al. (2007 Apr). Developmental regulation of an adhesin gene during cellular morphogenesis in the fungal pathogen Candida albicans.

Eckert SE, et al. (2007 May). PGA4, a GAS homologue from Candida albicans, is up-regulated early in infection processes.

Bastidas RJ, et al. (2009 Feb). The protein kinase Tor1 regulates adhesin gene expression in Candida albicans.

Stichternoth C, et al. (2009 Jun). Hypoxic adaptation by Efg1 regulates biofilm formation by Candida albicans.

Rosenbach A, et al. (2010 Jul). Adaptations of Candida albicans for growth in the mammalian intestinal tract.

Fuchs BB, et al. (2010 Jun). Role of filamentation in Galleria mellonella killing by Candida albicans.

Holcombe LJ, et al. (2010 May). Pseudomonas aeruginosa secreted factors impair biofilm development in Candida albicans.

Sahni N, et al. (2010 May 4). Tec1 mediates the pheromone response of the white phenotype of Candida albicans: insights into the evolution of new signal transduction pathways.

Shareck J, et al. (2011 Apr). Conjugated linoleic acid inhibits hyphal growth in Candida albicans by modulating Ras1p cellular levels and downregulating TEC1 expression.

Wächtler B, et al. (2011 Feb 23). From attachment to damage: defined genes of Candida albicans mediate adhesion, invasion and damage during interaction with oral epithelial cells.

Kim Y, et al. (2011 Jun). Killing of Candida albicans filaments by Salmonella enterica serovar Typhimurium is mediated by sopB effectors, parts of a type III secretion system.

Du H, et al. (2012). Roles of Candida albicans Gat2, a GATA-type zinc finger transcription factor, in biofilm formation, filamentous growth and virulence.

Hnisz D, et al. (2012). A histone deacetylase adjusts transcription kinetics at coding sequences during Candida albicans morphogenesis.

Nobile CJ, et al. (2012 Jan 20). A recently evolved transcriptional network controls biofilm development in Candida albicans.

Fanning S, et al. (2012 Jul). Divergent targets of Candida albicans biofilm regulator Bcr1 in vitro and in vivo.

Fox EP, et al. (2012 Nov-Dec). A sticky situation: untangling the transcriptional network controlling biofilm development in Candida albicans.

Daniels KJ, et al. (2012 Oct). The "finger," a unique multicellular morphology of Candida albicans induced by CO2 and dependent upon the Ras1-cyclic AMP pathway.

Lin CH, et al. (2013). Genetic control of conventional and pheromone-stimulated biofilm formation in Candida albicans.

Zhao LX, et al. (2013). Effect of tetrandrine against Candida albicans biofilms.

Bandara HM, et al. (2013 Aug). Secretory products of Escherichia coli biofilm modulate Candida biofilm formation and hyphal development.

Guan G, et al. (2013 Aug). Bcr1 plays a central role in the regulation of opaque cell filamentation in Candida albicans.

Znaidi S, et al. (2013 Aug). A comprehensive functional portrait of two heat shock factor-type transcriptional regulators involved in Candida albicans morphogenesis and virulence.

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


FOG04210
EOG8280JQ

sce:absent

Genes: 2
 





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


FOG04211
EOG8280JQ

sce:TEC1

Genes: 2

SGD Description
Transcription factor targeting filamentation genes and Ty1 expression; Ste12p activation of most filamentation gene promoters depends on Tec1p and Tec1p transcriptional activity is dependent on its association with Ste12p; binds to TCS elements upstream of filamentation genes, which are regulated by Tec1p/Ste12p/Dig1p complex; competes with Dig2p for binding to Ste12p/Dig1p; positive regulator of chronological life span; TEA/ATTS DNA-binding domain family member


References

Laloux I, et al. (1990 Jul). TEC1, a gene involved in the activation of Ty1 and Ty1-mediated gene expression in Saccharomyces cerevisiae: cloning and molecular analysis.

Bürglin TR, et al. (1991 Jul 12). The TEA domain: a novel, highly conserved DNA-binding motif.

Chi A, et al. (2007 Feb 13). Analysis of phosphorylation sites on proteins from Saccharomyces cerevisiae by electron transfer dissociation (ETD) mass spectrometry.

Van Damme P, et al. (2012 Jul 31). N-terminal acetylome analyses and functional insights of the N-terminal acetyltransferase NatB.

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


FOG04212
EOG8280JQ

sce:absent

Genes: 5

AspGD Description
Putative transcription factor similar to A. nidulans abaA; predicted role in conidiophore development; expressed in germinating conidia


References

Clutterbuck AJ, et al. (1969 Oct). A mutational analysis of conidial development in Aspergillus nidulans.

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

Martinelli SD, et al. (1979 Oct). Phenotypes of double conidiation mutants of Aspergillus nidulans.

Boylan MT, et al. (1987 Sep). Isolation and physical characterization of three essential conidiation genes from Aspergillus nidulans.

Adams TH, et al. (1988 Jul 29). brlA is necessary and sufficient to direct conidiophore development in Aspergillus nidulans.

Timberlake WE, et al. (1988 Jun). Genetic regulation of development in Aspergillus nidulans.

Mirabito PM, et al. (1989 Jun 2). Interactions of three sequentially expressed genes control temporal and spatial specificity in Aspergillus development.

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

Sewall TC, et al. (1990 Aug). abaA controls phialide differentiation in Aspergillus nidulans.

Adams TH, et al. (1990 Jul). Developmental repression of growth and gene expression in Aspergillus.

Adams TH, et al. (1990 Sep). Upstream elements repress premature expression of an Aspergillus developmental regulatory gene.

Clutterbuck AJ, et al. (1990 Sep). The genetics of conidiophore pigmentation in Aspergillus nidulans.

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

Andrianopoulos A, et al. (1991 Aug). ATTS, a new and conserved DNA binding domain.

Birse CE, et al. (1991 Feb 1). Isolation and developmentally regulated expression of an Aspergillus nidulans phenol oxidase-encoding gene, ivoB.

Marshall MA, et al. (1991 Jan). Aspergillus nidulans wetA activates spore-specific gene expression.

Bürglin TR, et al. (1991 Jul 12). The TEA domain: a novel, highly conserved DNA-binding motif.

Lloyd AT, et al. (1991 Nov). Codon usage 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.

Miller KY, et al. (1992 Sep). StuA is required for cell pattern formation in Aspergillus.

Aguirre J, et al. (1993 Apr). Spatial and temporal controls of the Aspergillus brlA developmental regulatory gene.

Aramayo R, et al. (1993 May). The Aspergillus nidulans yA gene is regulated by abaA.

Timberlake WE, et al. (1993 Oct). Translational Triggering and Feedback Fixation in the Control of Fungal Development.

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

Andrianopoulos A, et al. (1994 Apr). The Aspergillus nidulans abaA gene encodes a transcriptional activator that acts as a genetic switch to control development.

Sewall TC, et al. (1994 Dec). Cellular effects of misscheduled brlA, abaA, and wetA expression in Aspergillus nidulans.

Gems DH, et al. (1994 May). Enhancers of conidiation mutants in Aspergillus nidulans.

Prade RA, et al. (1994 Sep 1). The Penicillium chrysogenum and Aspergillus nidulans wetA developmental regulatory genes are functionally equivalent.

Stringer MA, et al. (1995 Apr). dewA encodes a fungal hydrophobin component of the Aspergillus spore wall.

Navarro RE, et al. (1996 Mar). catA, a new Aspergillus nidulans gene encoding a developmentally regulated catalase.

Busby TM, et al. (1996 May). Suppression and enhancement of the Aspergillus nidulans medusa mutation by altered dosage of the bristle and stunted genes.

Karos M, et al. (1996 Nov). hymA (hypha-like metulae), a new developmental mutant of Aspergillus nidulans.

Marhoul J, et al. (1997 Feb). Isolation of Aspergillus nidulans Mutants That Overcome brlA-Induced Growth Arrest

Marhoul J, et al. (1997 Feb). Isolation of Aspergillus nidulans mutants that overcome brlA-induced growth arrest.

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

Dutton JR, et al. (1997 Sep 15). StuAp is a sequence-specific transcription factor that regulates developmental complexity 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.

Stephens KE, et al. (1999 Jul-Aug). Functional analysis of DNA sequences required for conidium-specific expression of the SpoC1-C1C gene of Aspergillus nidulans.

Vallim MA, et al. (2000 Apr). Aspergillus SteA (sterile12-like) is a homeodomain-C2/H2-Zn+2 finger transcription factor required for sexual reproduction.

Borneman AR, et al. (2000 Dec). The abaA homologue of Penicillium marneffei participates in two developmental programmes: conidiation and dimorphic growth.

Pascon RC, et al. (2000 Jun). Morphogenesis in Aspergillus nidulans requires Dopey (DopA), a member of a novel family of leucine zipper-like proteins conserved from yeast to humans.

Schier N, et al. (2001 Jun). A Pcl-like cyclin of Aspergillus nidulans is transcriptionally activated by developmental regulators and is involved in sporulation.

Han S, et al. (2001 Oct). Complex control of the developmental regulatory locus brlA in Aspergillus nidulans.

Osherov N, et al. (2002 Nov). Identification of conidial-enriched transcripts in Aspergillus nidulans using suppression subtractive hybridization.

Scherer M, et al. (2002 Oct). Aspergillus nidulans catalase-peroxidase gene (cpeA) is transcriptionally induced during sexual development through the transcription factor StuA.

Ehrlich KC, et al. (2003 Feb). Sequence comparison of aflR from different Aspergillus species provides evidence for variability in regulation of aflatoxin production.

Park BC, et al. (2003 Mar 28). Activation of chsC transcription by AbaA during asexual development of Aspergillus nidulans.

Muthuvijayan V, et al. (2004). In silico reconstruction of nutrient-sensing signal transduction pathways in Aspergillus nidulans.

Ichinomiya M, et al. (2005 Sep). Expression of asexual developmental regulator gene abaA is affected in the double mutants of classes I and II chitin synthase genes, chsC and chsA, of Aspergillus nidulans.

Cánovas D, et al. (2006 Dec). Developmental regulation of the glyoxylate cycle in the human pathogen Penicillium marneffei.

Yu JH, et al. (2006 Oct). Growth and developmental control in the model and pathogenic aspergilli.

Emri T, et al. (2008 Dec). Regulation of autolysis in Aspergillus nidulans.

Horiuchi H, et al. (2009). Functional diversity of chitin synthases of Aspergillus nidulans in hyphal growth, conidiophore development and septum formation.

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

Harris SD, et al. (2009 Sep). The Spitzenkörper: a signalling hub for the control of fungal development?

Yu JH, et al. (2010 Dec). Regulation of Development in Aspergillus nidulans and Aspergillus fumigatus.

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

Ogawa M, et al. (2010 Jan). Genetic analysis of conidiation regulatory pathways in koji-mold Aspergillus oryzae.

Kwon NJ, et al. (2010 Sep). FlbC is a putative nuclear C2H2 transcription factor regulating development in Aspergillus nidulans.

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

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

Si H, et al. (2012 Jul). Morphogenetic and developmental functions of the Aspergillus nidulans homologues of the yeast bud site selection proteins Bud4 and Axl2.

Son H, et al. (2013). AbaA regulates conidiogenesis in the ascomycete fungus Fusarium graminearum.

Kang JY, et al. (2013 Dec). The MpkB MAP kinase plays a role in autolysis and conidiation of 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.

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

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

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

Lee MK, et al. (2014 May). NsdD is a key repressor of asexual development in Aspergillus nidulans.

Wang M, et al. (2015 Jan). PdbrlA, PdabaA and PdwetA control distinct stages of conidiogenesis in Penicillium digitatum.

Chung D, et al. (2015 Mar-Apr). Neurospora crassa ASM-1 complements the conidiation defect in a stuA mutant of Aspergillus nidulans.

Hu P, et al. (2015 Oct). AcstuA, which encodes an APSES transcription regulator, is involved in conidiation, cephalosporin biosynthesis and cell wall integrity of Acremonium chrysogenum.

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