Overexpression of a heat shock protein (ThHSP18.3) from Tamarix hispida confers stress tolerance to yeast
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  • 作者:Caiqiu Gao (1)
    Bo Jiang (1)
    Yucheng Wang (1)
    Guifeng Liu (1)
    Chuanping Yang (1) yangchuanpingnefu@yahoo.com
  • 关键词:Gene expression &#8211 ; Heat shock protein &#8211 ; Saccharomyces cerevisiae &#8211 ; Stress tolerance &#8211 ; Tamarix hispida
  • 刊名:Molecular Biology Reports
  • 出版年:2012
  • 出版时间:April 2012
  • 年:2012
  • 卷:39
  • 期:4
  • 页码:4889-4897
  • 全文大小:676.9 KB
  • 参考文献:1. Hwang EW, Kim KA, Park SC, Jeong MJ, Byun MO, Kwon HB (2005) Expression profiles of hot pepper (Capsicum annum) genes under cold stress conditions. J Biosci 30:657–667
    2. Wang W, Vinocur B, Shoseyov O, Altman A (2004) Role of plant-heat-shock proteins and molecular chaperones in the abiotic stress response. Trends Plant Sci 9:244–252
    3. Jiao W, Hong W, Li P, Sun S, Ma J, Qian M, Hu M, Chang Z (2008) The dramatically increased chaperone activity of small heat-shock protein IbpB is retained for an extended period of time after the stress condition is removed. Biochem J 410:63–70
    4. Siddique M, Gernhard S, von Koskull-Doring P, Vierling E, Scharf KD (2008) The plant sHSP superfamily: five new members in Arabidopsis thaliana with unexpected properties. Cell Stress Chaperones 13:183–197
    5. Borges JC, Ramos CHI (2005) Protein folding in the cell. Protein Pept Lett 12:256–261
    6. DeRocher AD, Helm KW, Lauzon LM, Vierling E (1991) Expression of a conserved family of cytoplasmic low molecular weight heat shock proteins during heat stress and recovery. Plant Physiol 96:1038–1047
    7. Lee GJ, Vierling E (2000) A small heat shock protein cooperates with heat shock protein 70 systems to reactivate a heat-denatured protein. Plant Physiol 122:189–198
    8. Narberhaus F (2002) α-Crystallin-type heat shock proteins: socializing minichaperones in the context of a multichaperone network. Microbiol Mol Biol Rev 66:64–93
    9. Banzet N, Richaud C, Deveaux Y, Kazmaier M, Gagnon J, Triantaphylid猫s C (1998) Accumulation of small heat shock proteins, including mitochondrial HSP22, induced by oxidative stress and adaptive response in tomato cells. Plant J 13:519–527
    10. Dafny-Yelin M, Tzfira T, Vainstein A, Adam Z (2008) Non-redundant functions of sHSP-CIs in acquired thermotolerance and their role in early seed development in Arabidopsis. Plant Mol Biol 67:363–373
    11. Cao Z, Jia Z, Liu Y, Wang M, Zhao J, Zheng J, Wang G (2010) Constitutive expression of ZmsHSP in Arabidopsis enhances their cytokinin sensitivity. Mol Biol Rep 37:1089–1097
    12. Hamilton EW, Coleman JS (2001) Heat-shock proteins are induced in unstressed leaves of Nicotiana attenuate (Solanaceae) when distant leaves are stressed. Am J Bot 88:950–955
    13. Malik MK, Slovin JP, Hwang CH, zimmerman JL (1999) Modified expression of a carrot small heat shock protein gene, HSP17.7, results in increased or decreased thermotolerance. Plant J 20:89–99
    14. Tiroli AO, Ramos CHI (2007) Chemical and biophysical characterization of small heat shock proteins from sugarcane. Involvement of a specific region located at the N-terminus with substrate specificity. Int J Biochem Cell Biol 39:818–831
    15. Luj谩n R, Lled铆as F, Mart铆nez LM, Barreto R, Cassab GI, Nieto-Sotelo J (2009) Small heat-shock proteins and leaf cooling capacity account for the unusual heat tolerance of the central spike leaves in Agave tequilana var. Weber. Plant Cell Environ 32:1791–1803
    16. Maqbool A, Abbas W, Rao AQ, Irfan M, Zahur M, Bakhsh A, Riazuddin S, Husnain T (2010) Gossypium arboreum GHSP26 enhances drought tolerance in Gossypium hirsutum. Biotechnol Prog 26:21–25
    17. Frank G, Pressman E, Ophir R, Althan L, Shaked R, Freedman M, Shen S, Firon N (2009) Transcriptional profiling of maturing tomato (Solanum lycopersicum L.) microspores reveals the involvement of heat shock proteins, ROS scavengers, hormones, and sugars in the heat stress response. J Exp Bot 60:3891–3908
    18. Jiang C, Xu J, Zhang H, Zhang X, Shi J, Li M, Ming F (2009) A cytosolic class I small heat shock protein, RcHSP17.8, of Rosa chinensis confers resistance to a variety of stresses to Escherichia coli, yeast and Arabidopsis thaliana. Plant Cell Environ 32:1046–1059
    19. Gao C, Wang Y, Jiang B, Liu G, Yu L, Wei Z, Yang C (2011) A novel vacuolar membrane H+-ATPase c subunit gene (ThVHAc1) from Tamarix hispida confers tolerance to several abiotic stresses in Saccharomyces cerevisiae. Mol Biol Rep 38:957–963
    20. Gao CQ, Wang YC, Liu GF, Yang CP, Jiang J, Li HY (2008) Expression profiling of salinity-alkali stress responses by large-scale expressed sequence tag analysis in Tamarix hispida. Plant Mol Biol 66:245–258
    21. Livak KJ, Schmittgen TD (2001) Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) method. Methods 25:402–408
    22. Kang GY, Park EH, Lim CJ (2008) Molecular cloning, characterization and regulation of a peroxiredoxin gene from Schizosaccharomyces pombe. Mol Biol Rep 35:387–395
    23. Scharf KD, Siddique M, Vierling E (2001) The expanding family of Arabidopsis thaliana small heat stress proteins and a new family of proteins containing alpha-crystallin domains (Acd proteins). Cell Stress Chaperones 6:225–237
    24. Stupnikova I, Benamar A, Tolleter D, Grelet J, Borovskii G, Dorne AJ, Macherel D (2006) Pea seed mitochondria are endowed with a remarkable tolerance to extreme physiological temperatures. Plant Physiol 140:326–335
    25. Maqbool A, Zahur M, Irfan M, Qaiser U, Rashid B, Husnain T, Riazuddin S (2007) Identification characterization and expression of drought related α-crystalline heat shock protein gene (GHSP) from Desi Cotton (Gossypium arboreum L.). Crop Sci 47:2437–2444
    26. Scarpeci TE, Zanor MI, Valle EM (2008) Investigating the role of plant heat shock proteins during oxidative stress. Plant Signal Behav 3:856–857
    27. Joe MK, Park SM, Lee YS, Hwang DS, Hong CB (2000) High temperature stress resistance of Escherichia coli induced by a tobacco class I low molecular weight heat-shock protein. Mol Cells 10:519–524
    28. Yeh CH, Chen YM, Lin CY (2002) Functional regions of rice heat shock protein Oshsp16.9, required for conferring thermotolerance in Escherichia coli. Plant Physiol 128:661–668
    29. Sun W, Bernard C, van de Cotte B, Van MM, Verbruggen N (2001) At-HSP17.6A, encoding a small heat-shock protein in Arabidopsis, can enhance osmotolerance upon overexpression. Plant J 27:407–415
    30. Murakami T, Matsuba S, Funatsuki H, Kawaguchi K, Saruyama H, Tanida M, Sato Y (2004) Over-expression of a small heat shock protein, sHSP17.7, confers both heat tolerant and UV-B resistant to rice plants. Mol Breed 13:165–175
    31. L枚w D, Br盲ndle K, Nover L, Forreiter C (2000) Cytosolic heatstress proteins Hsp17.7 class I and Hsp17.3 class II of tomato act as molecular chaperones in vivo. Planta 211:575–582
    32. Andersen KM, Semple CA, Hartmann-Petersen R (2007) Characterisation of the nascent polypeptide-associated complex in fission yeast. Mol Biol Rep 34:275–281
    33. Jeong M, Park S, Kwon H, Byun M (2000) Isolation and characterization of the gene encoding glyceraldehyde-3-phosphate dehydrogenase. Biochem Biophys Res Commun 278:192–196
    34. Lee EH, Hyun DH, Park EH, Lim CJ (2010) A second protein disulfide isomerase plays a protective role against nitrosative and nutritional stresses in Schizosaccharomyces pombe. Mol Biol Rep 37:3663–3671
    35. Liu ZH, Wang YC, Qi XT, Yang CP (2010) Cloning and characterization of a chitinase gene Lbchi31 from Limonium bicolor and identification of its biological activity. Mol Biol Rep 37:2447–2453
    36. Mahalakshmi S, Christopher G, Reddy T, Rao K, Reddy V (2006) Isolation of a cDNA clone (PcSrp) encoding serine-rich-protein from Porteresia coarctata T. and its expression in yeast and finger millet (Eleusine coracana L.) affording salt tolerance. Planta 224:347–359
    37. Rausell A, Kanhonou R, Yenush L, Serrano R, Ros R (2003) The translation initiation factor eIF1A is an important determinant in the tolerance to NaCl stress in yeast and plants. Plant J 34:257–267
    38. Shen X, Martens S, Chen M, Li D, Dong J, Wang T (2010) Cloning and characterization of a functional flavanone-3β-hydroxylase gene from Medicago truncatula. Mol Biol Rep 37:3283–3289
    39. Yang J, Wang Y, Liu G, Yang c, Li c (2011) Tamarix hispida metallothionein-like ThMT3, a reactive oxygen species scavenger, increases tolerance against Cd2+, Zn2+, Cu2+, and NaCl in transgenic yeast. Mol Biol Rep 38:1567–1574
    40. Yang X, Huang J, Jiang Y, Zhang HS (2009) Cloning and functional identification of two members of the ZIP (Zrt Irt-like protein) gene family in rice (Oryza sativa L.). Mol Biol Rep 36:281–287
  • 作者单位:1. State Key Laboratory of Tree Genetics and Breeding, Northeast Forestry University, 26 Hexing Road, Harbin, 150040 People鈥檚 Republic of China
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Animal Anatomy, Morphology and Histology
    Animal Biochemistry
  • 出版者:Springer Netherlands
  • ISSN:1573-4978
文摘
It is well known that plant heat shock proteins (HSPs) play important roles both in response to adverse environmental conditions and in various developmental processes. However, among plant HSPs, the functions of tree plant HSPs are poorly characterized. To improve our understanding of tree HSPs, we cloned and characterized an HSP gene (ThHSP18.3) from Tamarix hispida. Sequence alignment reveals that ThHSP18.3 belongs to the class I small heat shock protein family. A transient expression assay showed that ThHSP18.3 protein was targeted to the cell nucleus. Treatment of Tamarix hispida with cold and heat shock highly induced ThHSP18.3 expression in all studied leaves, roots and stems, whereas, treatment of T. hispida with NaCl, NaHCO3, and PEG induced ThHSP18.3 expression in leaves and decreased its expression in roots and stems. Further, to study the role of ThHSP18.3 in stress tolerance under different stress conditions, we cloned ThHSP18.3 into the pYES2 vector, transformed and expressed the vector in yeast Saccharomyces cerevisiae. Yeast cells transformed with an empty pYES2 vector were employed as a control. Compared to the control, yeast cells expressing ThHSP18.3 showed greater tolerance to salt, drought, heavy metals, and both low and high temperatures, indicating that ThHSP18.3 confers tolerance to these stress conditions. These results suggested that ThHSP18.3 is involved in tolerance to a variety of stress conditions in T. hispida.

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