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Plant-Environment Interactions

Comparative proteomic analysis of Arabidopsis thaliana roots between wild type and its salt-tolerant mutant

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Pages 330-337 | Received 08 Jul 2013, Accepted 07 Aug 2013, Published online: 11 Sep 2013

References

  • Bray EA. 2004. Genes commonly regulated by water-deficit stress in Arabidopsis thaliana. J Exp Bot. 55: 2331–2341.10.1093/jxb/erh270
  • Degenhardt B, Gimmler H. 2000. Cell wall adaptations to multiple environmental stresses in maize roots. J Exp Bot. 51:595–603.10.1093/jexbot/51.344.595
  • Dhugga KS, Tiwari SC, Ray PM. 1997. A reversibly glycosylated polypeptide (RGP1) possibly involved in plant cell wall synthesis: purification, gene cloning, and trans-Golgi localization. Proc Natl Acad Sci USA. 94:7679–7684.10.1073/pnas.94.14.7679
  • Edwards R, Dixon DP, Walbot V. 2000. Plant glutathione S-transferases: enzymes with multiple functions in sickness and in health. Trends Plant Sci. 5:193–198.10.1016/S1360-1385(00)01601-0
  • Gorg A, Weiss W, Dunn MJ. 2004. Current two-dimensional electrophoresis technology for proteomics. Proteomics. 4:3665–3685.10.1002/pmic.200401031
  • Gotham SM, Fryer PJ, Paterson WR. 1988. The measurement of insoluble proteins using a modified Bradford assay. Anal Biochem. 173:353–358.10.1016/0003-2697(88)90199-6
  • Guo ML, Yang AH, Zhou CX, Liu X. 2012. The new understanding of Arabidopsis thaliana proteins associated with salinity. J Plant Interact. 7:348–355.10.1080/17429145.2011.640438
  • Hiraga S, Sasaki K, Ito H, Ohashi Y, Matsui H. 2001. A large family of class III plant peroxidases. Plant Cell Physiol. 42:462–468.10.1093/pcp/pce061
  • Jiang YQ, Deyholos MK. 2006. Comprehensive transcriptional profiling of NaCl-stressed Arabidopsis roots reveals novel classes of responsive genes. BMC Plant Biol. 6:25.10.1186/1471-2229-6-25
  • Jiang YQ, Yang B, Harris NS, Deyholos MK. 2007. Comparative proteomic analysis of NaCl stress-responsive proteins in Arabidopsis roots. J Exp Bot. 58:3591–3607.10.1093/jxb/erm207
  • Kumarathasan P, Mohottalage S, Goegan P, Vincent R. 2005. An optimized protein in-gel digest method for reliable proteome characterization by MALDI-TOF-MS analysis. Anal Biochem. 346:85–89.10.1016/j.ab.2005.06.004
  • Lee S, Lee EJ, Yang EJ, Lee JE, Park AR, Song WH, Park OK. 2004. Proteomic identification of annexins, calcium-dependent membrane binding proteins that mediate osmotic stress and abscisic acid signal transduction in Arabidopsis. Plant Cell. 16:1378–1391.10.1105/tpc.021683
  • Liu JX, Srivastava R, Che P, Howell SH. 2007. Salt stress responses in Arabidopsis utilize a signal transduction pathway related to endoplasmic reticulum stress signaling. Plant J. 51:897–909.10.1111/j.1365-313X.2007.03195.x
  • Lytle BL, Song J, de la Cruz NB, Peterson FC, Johnson KA, Bingman CA, Phillips GN, Jr Volkman BF. 2009. Structures of two Arabidopsis thaliana major latex proteins represent novel helix-grip folds. Proteins. 76:237–243.10.1002/prot.22396
  • Misra P, Pandey A, Tiwari M, Chandrashekar K, Sidhu OP, Asif MH, Chakrabarty D, Singh PK, Trivedi PK, Nath P, Tuli R. 2010. Modulation of transcriptome and metabolome of tobacco by Arabidopsis transcription factor, AtMyb12, leads to insect resistance. Plant Physiol. 152:2258–2268.10.1104/pp.109.150979
  • Mousavi A, Hotta Y. 2005. Glycine-rich proteins: a class of novel proteins. Appl Biochem Biotech. 120:169–174.10.1385/ABAB:120:3:169
  • Nagano AJ, Matsushima R, Hara-Nishimura I. 2005. Activation of an ER-body-localized beta-glucosidase via a cytosolic binding partner in damaged tissues of Arabidopsis thaliana. Plant Cell Physiol. 46:1140–1148.10.1093/pcp/pci126
  • Oelmüller R, Peškan-Berghöfer T, Shahollari B, Trebicka A, Sherameti I, Varma A. 2005. MATH domain proteins represent a novel protein family in Arabidopsis thaliana, and at least one member is modified in roots during the course of a plant–microbe interaction. Physiol Plantarum. 124:152–166.10.1111/j.1399-3054.2005.00505.x
  • Rus A, Yokoi S, Sharkhuu A, Reddy M, Lee BH, Matsumoto TK, Koiwa H, Zhu JK, Bressan RA, Hasegawa PM. 2001. AtHKT1 is a salt tolerance determinant that controls Na+ entry into plant roots. Proc Natl Acad Sci USA. 98:14150–14155.10.1073/pnas.241501798
  • Shaheena S, Naseera S, Ashrafa M, Akramb NA. 2013. Salt stress affects water relations, photosynthesis, and oxidative defense mechanisms in Solanum melongena L. J Plant Interact. 8:85–96.10.1080/17429145.2012.718376
  • Tester M, Davenport R. 2013. Na+ tolerance and Na+ transport in higher plants. Ann Bot. 91:503–527.10.1093/aob/mcg058
  • Wang MC, Peng ZY, Li CL, Li F, Liu C, Xia GM. 2008. Proteomic analysis on a high salt tolerance introgression strain of Triticum aestivum/Thinopyrum ponticum. Proteomics. 8:1470–1489.10.1002/pmic.200700569
  • Xing WB, Rajashekar CB. 2001. Glycine betaine involvement it freezing tolerance and water stress in Arabidosis thaliana. Environ Exp Bot. 46:21–28.10.1016/S0098-8472(01)00078-8
  • Zapata JM. 2003. TNF-receptor-associated factors as targets for drug development. Expert Opin Ther Tar. 7:411–425.10.1517/14728222.7.3.411
  • Zhao Q, Zhang H, Wang T, Chen SX, Dai SJ. 2013. Proteomics-based investigation of salt-responsive mechanisms in plant roots. J Proteomics. 82:230–253.10.1016/j.jprot.2013.01.024

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