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Computational identification of root hair-specific genes in Arabidopsis

. 2010 Nov ; 5 (11) : 1407-18. [epub] 20101101

Language English Country United States Media print-electronic

Document type Journal Article, Research Support, Non-U.S. Gov't

Activated cortical domains (ACDs) are regions of the plant cell cortex performing localized membrane turnover, delimited by concerted action of the cortical cytoskeleton and endomembrane compartments. Arabidopsis thaliana rhizodermis consists of two cell types differing by a single ACD (trichoblasts, carrying tip-growing root hairs, and hairless atrichoblasts), providing a model for the study of ACD determination. We compiled a set of genes specifically upregulated in root hairs from published transcriptome data, and compared it with a "virtual Arabidopsis root hair proteome", i.e. a list of computationally identified homologs of proteins from the published soybean root hair proteome. Both data sets were enriched in genes and proteins associated with root hairs in functional studies, but there was little overlap between the transcriptome and the proteome: the former captured gene products specific to root hairs, while the latter selected those abundant in root hairs but not necessarily specific to them. Decisive steps in ACD specification may be performed by signaling proteins of high expression specifity and low abundance. Nevertheless, 73 genes specifically transcribed in Arabidopsis trichoblasts or root hairs encode homologs of abundant root hair proteins from soybean. Most of them encode "housekeeping" proteins required for rapid tip growth. However, among the "candidates" is also a generative actin isoform, ACT11. Preliminary characterization of an act11 mutant allele indeed suggests a hitherto unexpected role for this gene in root and root hair development.

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Žárský V, Fowler JE. ROP (Rho-related protein from plants) GTPases for spatial control of root hair morphogenesis. In: Emons AMC, Ketelaar T, editors. Root hairs. Berlin: Springer; 2009. pp. 191–210.

Žárský V, Cvrčková F, Potocký M, Hála M. Exocytosis and cell polarity in plants—exocyst and recycling domains. New Phytol. 2009;183:255–272. PubMed

Ketelaar T, Galway ME, Mulder BM, Emons AMC. Rates of exocytosis and endocytosis in Arabidopsis root hairs and pollen tubes. J Microscopy. 2008;231:265–273. PubMed

Valdez-Taubas J, Pelham HRB. Slow diffusion of proteins in the yeast plasma membrane allows polarity to be maintained by endocytic cycling. Curr Biol. 2003;13:1636–1640. PubMed

Carol RJ, Dolan L. Building a hair: tip growth in Arabidopsis thaliana root hairs. Philos Trans R Soc Lond B Biol Sci. 2002;357:815–821. PubMed PMC

Schiefelbein J, Kwak SH, Wieckowski Y, Barron C, Bruex A. The gene regulatory network for root epidermal cell-type pattern formation in Arabidopsis. J Exp Bot. 2009;60:1515–1521. PubMed PMC

Birnbaum K, Shasha DE, Wang JY, Jung JW, Lambert GM, Galbraith DW, et al. A gene expression map of the Arabidopsis root. Science. 2003;302:1956–1960. PubMed

Brady SM, Orlando DA, Lee JY, Wang JY, Koch J, Dinneny JR, et al. A high-resolution root spatiotemporal map reveals dominant expression patterns. Science. 2007;318:801–806. PubMed

Jones MA, Raymond MJ, Smirnoff N. Analysis of the root-hair morphogenesis transcriptome reveals the molecular identity of six genes with roles in root-hair development in Arabidopsis. Plant J. 2006;45:83–100. PubMed

Poole RL. The TAIR database. Methods Mol Biol. 2007;406:179–212. PubMed

Brechenmacher L, Lee J, Sachdev S, Song Z, Nguyen TH, Joshi T, et al. Establishment of a protein reference map for soybean root hair cells. Plant Physiol. 2009;149:670–682. PubMed PMC

Lindsey K, Casson S, Chilley P. Peptides: new signalling molecules in plants. Trends Plant Sci. 2002;7:78–83. PubMed

Rutherford S, Moore I. The Arabidopsis Rab GTPase family: another enigma variation. Curr Opin Plant Biol. 2002;5:518–528. PubMed

Nishikawa M, Kira Y, Yabunaka Y, Inoue M. Identification and characterization of endoplasmic reticulum-associated protein, ERp43. Gene. 2007;386:42–51. PubMed

Dominguez M, Dejgaard K, Fullekrug J, Dahan S, Fazel A, Paccaud JP, et al. gp25L/emp24/p24 protein family members of the cis-Golgi network bind both COP I and II coatomer. J Cell Biol. 1998;140:751–765. PubMed PMC

Heazlewood JL, Verboom RE, Tonti-Filippini J, Small I, Milar AH. SUBA: the Arabidopsis Subcellular Database. Nucl Acids Res. 2007;35:213–218. PubMed PMC

Bernal AJ, Yoo CM, Mutwil M, Jensen JK, Hou G, Blaukopf C, et al. Functional analysis of the cellulose synthase-like genes CSLD1, CSLD2 and CSLD4 in tip-growing Arabidopsis cells. Plant Physiol. 2008;148:1238–1253. PubMed PMC

Maris A, Suslov D, Fry SC, Verbelen JP, Vissenberg K. Enzymic characterization of two recombinant xyloglucan endotransglucosylase/hydrolase (XTH) proteins of Arabidopsis and their effect on root growth and cell wall extension. J Exp Bot. 2009;60:3959–3972. PubMed

Honys D, Twell D. Comparative analysis of the Arabidopsis pollen transcriptome. Plant Physiol. 2003;132:640–652. PubMed PMC

Honys D, Twell D. Transcriptome analysis of haploid male gametophyte development in Arabidopsis. Genome Biol. 2004;5:85. PubMed PMC

Pina C, Pinto F, Feijó JA, Becker JD. Gene family analysis of the Arabidopsis pollen transcriptome reveals biological implications for cell growth, division control and gene expression regulation. Plant Physiol. 2005;38:744–756. PubMed PMC

Noir S, Bräutigam A, Colby T, Schmidt J, Panstruga R. A reference map of the Arabidopsis thaliana mature pollen proteome. Biochem Biophys Res Commun. 2005;337:1257–1266. PubMed

Grobei MA, Qeli E, Brunner E, Rehrauer H, Zhang R, Roschitzki B, et al. Deterministic protein inference for shotgun proteomics data provides new insights into Arabidopsis pollen development and function. Genome Res. 2009;19:1786–1800. PubMed PMC

Haerizadeh F, Wong CE, Bhalla PL, Gresshoff PM, Singh MB. Genomic expression profiling of mature soybean (Glycine max) pollen. BMC Plant Biol. 2009;9:25. PubMed PMC

Oppenheimer DG, Pollock MA, Vacik J, Szymanski DB, Ericson B, Feldmann K, et al. Essential role of a kinesin-like protein in Arabidopsis trichome morphogenesis. Proc Natl Acad Sci USA. 1997;94:6261–6266. PubMed PMC

Huang S, An YQ, McDowell JM, McKinney EC, Meagher RB. The Arabidopsis ACT11 actin gene is strongly expressed in tissues of the emerging inflorescence, pollen and developing ovules. Plant Mol Biol. 1997;33:125–139. PubMed

Laval V, Koroleva OA, Murphy E, Lu C, Milner JJ, Hooks MA, et al. Distribution of actin gene isoforms in the Arabidopsis leaf measured in microsamples from intact individual cells. Planta. 2002;215:287–292. PubMed

Oda T, Iwasa M, Aihara T, Maeda Y, Narita A. The nature of the globular- to fibrous-actin transition. Nature. 2009;457:441–445. PubMed

Bibikova TN, Blancaflor EB, Gilroy S. Microtubules regulate tip growth and orientation in root hairs of Arabidopsis thaliana. Plant J. 1999;17:657–665. PubMed

Baluška F, Jasik J, Edelmann HG, Salajová T, Volkmann D. Latrunculin B-induced plant dwarfism: plant cell elongation Is F-actin-dependent. Dev Biol. 2001;231:113–124. PubMed

Deeks MJ, Cvrcková F, Machesky LM, Mikitová V, Ketelaar T, Žárský V, et al. Arabidopsis group Ie formins localize to specific cell membrane domains, interact with actin-binding proteins and cause defects in cell expansion upon aberrant expression. New Phytol. 2005;168:529–540. PubMed

Prioul JL, Méchin V, Lessard P, Thévenot C, Grimmer M, Chateau-Joubert S, et al. A joint transcriptomic, proteomic and metabolic analysis of maize endosperm development and starch filling. Plant Biotechnol J. 2008;6:855–869. PubMed

Catusse J, Job C, Job D. Transcriptome- and proteome-wide analyses of seed germination. C R Biol. 2008;331:815–822. PubMed

Scossa F, Laudencia-Chingcuanco D, Anderson OD, Vensel WH, Lafiandra D, D'Ovidio R, et al. Comparative proteomic and transcriptional profiling of a bread wheat cultivar and its derived transgenic line overexpressing a low molecular weight glutenin subunit gene in the endosperm. Proteomics. 2009;8:2948–2966. PubMed

Hornshoj H, Bendixen E, Conley LN, Andersen PK, Hedegaard J, Panitz F, et al. Transcriptomic and proteomic profiling of two porcine tissues using high-throughput technologies. BMC Genomics. 2009;10:30. PubMed PMC

Morris K, Lorenzen MD, Hiromasa Y, Tomich JM, Oppert C, Elpidina EN, et al. Tribolium castaneum larval gut transcriptome and proteome: A resource for the study of the coleopteran gut. J Proteome Res. 2009;8:3889–3898. PubMed

Steiling K, Kadar AY, Bergerat A, Flanigon J, Sridhar S, Shah V, et al. Comparison of proteomic and transcriptomic profiles in the bronchial airway epithelium of current and never smokers. PLOS One. 2009;4:5043. PubMed PMC

Yi Z, Bowen BP, Hwang H, Jenkinson CP, Coletta DK, Lefort N, et al. Global relationship between the proteome and transcriptome of human skeletal muscle. J Proteome Res. 2008;7:3230–3241. PubMed PMC

Foreman J, Demidchik V, Bothwell JH, Mylona P, Miedema H, Torres MA, et al. Reactive oxygen species produced by NADPH oxidase regulate plant cell growth. Nature. 2003;422:442–446. PubMed

Won SK, Lee YJ, Lee HY, Heo YK, Cho M, Cho HT. Cis-element- and transcriptome-based screening of root hair-specific genes and their functional characterization in Arabidopsis. Plant Physiol. 2009;150:1459–1473. PubMed PMC

Powell JR, Gulden RH, Hart MM, Campbell RG, Levy-Booth DJ, Dunfield KE, et al. Mycorrhizal and rhizobial colonization of genetically modified and conventional soybeans. Appl Environ Microbiol. 2007;73:4365–4367. PubMed PMC

Dvoráková L, Cvrčková F, Fischer L. Analysis of the hybrid proline-rich protein families from seven plant species suggests rapid diversification of their sequences and expression patterns. BMC Genomics. 2007;8:412. PubMed PMC

Bosch M, Hepler PK. Pectin methylesterases and pectin dynamics in pollen tubes. Plant Cell. 2005;17:3219–3226. PubMed PMC

Pelloux J, Rustérucci C, Mellerowicz EJ. New insights into pectin methylesterase structure and function. Trends Plant Sci. 2007;12:267–277. PubMed

Kandasamy MK, McKinney EC, Meagher RB. A single vegetative actin isovariant overexpressed under the control of multiple regulatory sequences is sufficient for normal Arabidopsis development. Plant Cell. 2009;21:701–718. PubMed PMC

Gilliland LU, Pawloski LC, Kandasamy MK, Meagher RB. Arabidopsis actin gene ACT7 plays an essential role in germination and root growth. Plant J. 2003;33:319–328. PubMed

Pawloski LC, Kandasamy MK, Meagher RB. The late pollen actins are essential for normal male and female development in Arabidopsis. Plant Mol Biol. 2006;62:881–896. PubMed

Yi K, Guo C, Chen D, Zhao B, Yang B, Ren H. Cloning and functional characterization of a formin-like protein (AtFH8) from Arabidopsis. Plant Physiol. 2005;138:1071–1082. PubMed PMC

Molendijk AJ, Bischoff F, Rajendrakumar CS, Friml J, Braun M, Gilroy S, et al. Arabidopsis thaliana Rop GTPases are localized to tips of root hairs and control polar growth. EMBO J. 2001;20:2779–2788. PubMed PMC

Jones MA, Shen JJ, Fu Y, Li H, Yang Z, Grierson CS. The Arabidopsis Rop2 GTPase is a positive regulator of both root hair initiation and tip growth. Plant Cell. 2002;14:763–776. PubMed PMC

Lin Y, Wang Y, Zhu J, Yang Z. Localization of a Rho GTPase implies a role in tip growth and movement of the generative cell in pollen tubes. Plant Cell. 1996;8:293–303. PubMed PMC

Lee YJ, Szumlanski A, Nielsen E, Yang Z. Rho-GTPase—dependent filamentous actin dynamics coordinate vesicle targeting and exocytosis during tip growth. J Cell Biol. 2008;181:1155–1168. PubMed PMC

Gu Y, Fu Y, Dowd P, Li S, Vernoud V, Gilroy S, et al. A Rho family GTPase controls actin dynamics and tip growth via two counteracting downstream pathways in pollen tubes. J Cell Biol. 2005;169:127–138. PubMed PMC

Fu Y, Gu Y, Zheng Z, Wasteneys GO, Yang Z. Arabidopsis interdigitating cell growth requires two antagonistic pathways with opposing action on cell morphogenesis. Cell. 2005;120:687–700. PubMed

Kusano H, Testerink C, Vermeer JE, Tsuge T, Shimada H, Oka A, et al. The Arabidopsis Phosphatidylinositol Phosphate 5-Kinase PIP5K3 is a key regulator of root hair tip growth. Plant Cell. 2008;20:367–380. PubMed PMC

Stenzel I, Ischebeck T, Konig S, Holubowska A, Sporysz M, Hause B, et al. The type B phosphatidylinositol-4-phosphate 5-kinase 3 is essential for root hair formation in Arabidopsis thaliana. Plant Cell. 2008;20:124–141. PubMed PMC

Morris ER, Walker JC. Receptor-like protein kinases: the keys to response. Curr Opin Plant Biol. 2003;6:339–342. PubMed

Monshausen GB, Gilroy S. Feeling green: mechanosensing in plants. Trends Cell Biol. 2009;19:228–235. PubMed

Cock PJ, Antao T, Chang JT, Chapman BA, Cox CJ, Dalke A, et al. Biopython: freely available Python tools for computational molecular biology and bioinformatics. Bioinformatics. 2009;25:1422–1423. PubMed PMC

McGinnis S, Madden TL. BLAST: at the core of a powerful and diverse set of sequence analysis tools. Nucleic Acids Res. 2004;32:20–25. PubMed PMC

Sessions A, Burke E, Presting G, Aux G, McElver J, Patton D, et al. A high-throughput Arabidopsis reverse genetics system. Plant Cell. 2002;14:2985–2994. PubMed PMC

Konopka CA, Backues SK, Bednarek SY. Dynamics of Arabidopsis dynamin-related protein 1C and a clathrin light chain at the plasma membrane. Plant Cell. 2008;20:1363–1380. PubMed PMC

Zabotina OA, van de Ven WT, Freshour G, Drakakaki G, Cavalier D, Mouille G, et al. Arabidopsis XXT5 gene encodes a putative alpha-1,6-xylosyltransferase that is involved in xyloglucan biosynthesis. Plant J. 2008;56:101–115. PubMed

Berkowitz O, Jost R, Pollmann S, Masle J. Characterization of TCTP, the translationally controlled tumor protein, from Arabidopsis thaliana. Plant Cell. 2008;20:3430–3447. PubMed PMC

Prokhnevsky AI, Peremyslov VV, Dolja VV. Overlapping functions of the four class XI myosins in Arabidopsis growth, root hair elongation and organelle motility. Proc Natl Acad Sci USA. 2008;105:19744–19749. PubMed PMC

Gilliland LU, Kandasamy MK, Pawloski LC, Meagher RB. Both vegetative and reproductive actin isovariants complement the stunted root hair phenotype of the Arabidopsis act2-1 mutation. Plant Physiol. 2002;130:2199–2209. PubMed PMC

Mikami K, Iuchi S, Yamaguchi-Shinozaki K, Shinozaki K. A novel Arabidopsis thaliana dynamin-like protein containing the pleckstrin homology domain. J Exp Bot. 2000;51:317–318. PubMed

Kang BH, Busse JS, Bednarek SY. Members of the Arabidopsis dynamin-like gene family, ADL1 are essential for plant cytokinesis and polarized cell growth. Plant Cell. 2003;15:899–913. PubMed PMC

Marmagne A, Ferro M, Meinnel T, Bruley C, Kuhn L, Garin J, et al. A high content in lipid-modified peripheral proteins and integral receptor kinases features in the arabidopsis plasma membrane proteome. Mol Cell Proteomics. 2007;6:1980–1996. PubMed

Lee GJ, Sohn EJ, Lee MH, Hwang I. The Arabidopsis Rab5 homologs Rha1 and Ara7 localize to the prevacuolar compartment. Plant Cell Physiol. 2004;45:1211–1220. PubMed

Koh EJ, Kwon YR, Kim KI, Hong SW, Lee H. Altered ARA2 (RABA1a) expression in Arabidopsis reveals the involvement of a Rab/YPT family member in auxin-mediated responses. Plant Mol Biol. 2009;70:113–122. PubMed

Preuss ML, Serna J, Falbel TG, Bednarek SY, Nielsen E. The Arabidopsis Rab GTPase RabA4b localizes to the tips of growing root hair cells. Plant Cell. 2004;16:1589–1603. PubMed PMC

Szumlanski AL, Nielsen E. The Rab GTPase RabA4d regulates pollen tube tip growth in Arabidopsis thaliana. Plant Cell. 2009;21:526–544. PubMed PMC

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