Genome-wide identification and comparative analysis of the TUBBY-like protein gene family in maize

Springer Science and Business Media LLC - Tập 38 Số 1 - Trang 25-36 - 2016
Yulong Chen1, Wei Dai1, Sun Baoming1, Yang Zhao1, Qing Ma1
1Key Laboratory of Crop Biology of Anhui Province, Anhui, Agricultural University, Hefei 230036, China

Tóm tắt

Từ khóa


Tài liệu tham khảo

Akihiro I, Nishina PM, Naggerten K (2002) The tubby-like proteins, a family with roles in neuronal development and function. J Cell Sci 115:9–14

Bailey TL, Williams N, Misleh C, Li WW (2006) MEME: discovering and analyzing DNA and protein sequence motifs. Nucleic Acids Res 34:W369–W373

Baskin DG, Wilcox BJ, Figlewicz DP, Dm D (1988) Insulin and insulin-like growth factors in the CNS. Trends Neurosci 11:107–111

Bateman A, Finn RD, Sims PJ, Wiedmer T, Biegert A, Söding J (2009) Phospholipid scramblases and Tubby-like proteins belong to a new superfamily of membrane tethered transcription factors. Bioinformatics 25:159–162

Boggon TJ, Shan WS, Santagata S, Myers SC, Shapiro L (1999) Implication of tubby proteins as transcription factors by structure-based functional analysis. Science 286:2119–2125

Cannon SB, Mitra A, Baumgarten A, Young ND, May G (2004) The roles of segmental and tandem gene duplication in the evolution of large gene families in Arabidopsis thaliana. BMC Plant Biol 4:10

Coleman DL, Eicher EM (1990) Fat (fat) and tubby (tub): two autosomal recessive mutations causing obesity syndromes in the mouse. J Hered 81:424–427

Deleu W, González V, Monfort A, Bendahmane A, Puigdomènech P, Arús P, Garcia-Mas J (2007) Structure of two melon regions reveals high microsynteny with sequenced plant species. Mol Genet Genom 278:611–622

Gagne JM, Downes BP, Shiu SH, Durski AM, Vierstra RD (2002) The F-box subunit of the SCF E3 complex is encoded by a diverse superfamily of genes in Arabidopsis. Proc Natl Acad Sci USA 99:11519–11524

Guo AY, Zhu QH, Chen X, Luo JC (2007) GSDS: a gene structure display server. Hereditas 29:1023–1026

Jain M, Nijhawan A, Arora R, Agarwal P, Ray S, Sharma P, Kapoor S, Tyagi AK, Jp K (2007) F-box proteins in rice. Genome-wide analysis, classification, temporal and spatial gene expression during panicle and seed development, and regulation by light and abiotic stress. Plant Physiol 143:1467–1483

Kapeller R, Moriarty A, Strauss A, Stubdal H, Theriault K, Siebert E, Chickering T, Morgenstern JP, Tartaglia LA, Lillie J (1999) Tyrosine phosphorylation of Tub and its association with Src Homology 2 domain-containing proteins implicate Tub in intracellular signaling by insulin. J Biol Chem 274:24980–24986

Kleyn PW, Fan W, Kovats SG, Lee JJ, Pulido JC, Wu Y, Berkemeier LR, Misumi DJ, Holmgren L et al (1996) Identification and characterization of the mouse obesity gene tubby: a member of a novel gene family. Cell 2:281–290

Kong H, Landherr LL, Frohlich MW, Leebens-Mack J, Ma H, Depamphilis CW (2007) Patterns of gene duplication in the plant SKP1 gene family in angiosperms: evidence for multiple mechanisms of rapid gene birth. Plant J 50:873–885

Lai CP, Lee CL, Chen PH, Wu SH, Yang CC, Shaw JF (2004) Molecular analyses of the Arabidopsis TUBBY-like protein gene family. Plant Physiol 134:1586–1597

Letunic I, Doerks T, Bork P (2012) SMART 7: recent updates to the protein domain annotation resource. Nucleic Acids Res 40:D302–D305

Librado P, Rozas J (2009) DnaSP v5: a software for comprehensive analysis of DNA polymorphism data. Bioinformatics 25:1451–1452

Liu Q (2008) Identification of rice TUBBY-like genes and their evolution. FEBS J 275:163–171

Lynch M, Conery JS (2000) The evolutionary fate and consequences of duplicate genes. Science 290:1151–1155

Mf W (1998) The IRS-signalling system: a network of docking proteins that mediate insulin action. Mol Cell Biochem 182:3–11

Moore RC, Purugganan MD (2003) The early stages of duplicate gene evolution. Proc Natl Acad Sci USA 100:15682–15687

Mural RJ, Adams EWM, Smith HO, Miklos GL, Wides R, Halpern A, Li PW, Sutton GG, Nadeau J et al (2002) A comparison of whole-genome shotgun-derived mouse chromosome 16 and the human genome. Science 296:1661–1671

Noben-Trauth K, Naggert JK, North MA, Pm N (1996) A candidate gene for the mouse mutation tubby. Nature 380:534–538

North MA, Naggert JK, Yan Y, Noben-Trauth K, Nishina PM (1997) Molecular characterization of TUB, TULP1, and TULP2, members of the novel tubby gene family and their possible relation to ocular diseases. Proc Natl Acad Sci USA 94:3128–3133

Ohlemiller KK, Hughes RM, Mosinger-Ogilvie J, Speck JD, Grosof DH, Ms S (1995) Cochlear and retinal degeneration in the tubby mouse. NeuroReport 6:845–849

Punta M, Coggill PC, Eberhardt RY, Mistry J, Tate J, Boursnell C, Pang N, Forslund K, Ceric G, Clements J (2012) The Pfam protein families database. Nucleic Acids Res 40:D290–D301

Rogozin IB, Wolf YI, Sorokin AV, Mirkin BG, Koonin EV (2003) Remarkable interkingdom conservation of intron positions and massive, lineage-specific intron loss and gain in eukaryotic evolution. Curr Biol 13:1512–1517

Santagata S, Boggon TJ, Baird CL, Gomez CA, Zhao J, Shan WS, Myszka DG, Shapiro L (2001) G-protein signaling through tubby proteins. Science 292:2041–2050

Sato S, Nakamura Y, Kaneko T, Asamizu E, Kato T, Nakao M, Sasamoto S, Watanabe A, Ono A, Kawashima K (2008) Genome structure of the legume, Lotus japonicus. DNA Res 15:227–239

Sekhon RS, Lin H, Childs KL, Hansey CN, Buell CR, De Leon N, Kaeppler SM (2011) Genome-wide atlas of transcription during maize development. Plant J 66:553–563

Sekhon RS, Briskine R, Hirsch CN, Myers CL, Springer NM, Buell CR, de Leon N, Kaeppler SM (2013) Maize gene atlas developed by RNA sequencing and comparative evaluation of transcriptomes based on RNA sequencing and microarrays. PLoS One 8:e61005

Tamura K, Stecher G, Peterson D, Filipski A, Kumar S (2013) MEGA6: Molecular Evolutionary Genetics Analysis Software version 6.0. Mol Biol Evol 30:2725–2729

Thompson JD, Higgins DG, Tj G (1994) CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucleic Acids Res 22:4673–4680

Thompson JD, Gibson TJ, Plewniak F, Jeanmougin F, Dg H (1997) The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Res 25:4876–4882

Ullrich A, Schlessinger J (1990) Signal transduction by receptors with tyrosine kinase activity. Cell 61:203–212

Wang X, Shi X, Hao B, Ge S, Luo J (2005) Duplication and DNA segmental loss in the rice genome: implications for diploidization. New Phytol 165:937–946

Wardhan V, Jahan K, Gupta S, Chennareddy S, Datta A, Chakraborty S, Chakraborty N (2012) Overexpression of CaTLP1, a putative transcription factor in chickpea (Cicer arietinum L.), promotes stress tolerance. Plant Mol Biol 79:479–493

Yang Z, Zhou Y, Wang X, Gu S, Yu J, Liang G, Yan C, Xu C (2008) Genomewide comparative phylogenetic and molecular evolutionary analysis of tubby-like protein family in Arabidopsis, rice, and poplar. Genomics 92:246–253

Yu J, Wang J, Lin W, Li S, Li H, Zhou J, Ni P, Dong W, Hu S, Zeng C (2005) The genomes of Oryza sativa: a history of duplications. PLoS Biol 3:e38