Expression characteristics of heat shock protein genes in two comparable inbred lines of Chinese cabbage, Chiifu and Kenshin
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  • 作者:Jeongyeo Lee (1)
    Hayoung Song (1)
    Ching-Tack Han (2)
    Yong Pyo Lim (1)
    Sang-Min Chung (3)
    Yoonkang Hur (1)
  • 关键词:Brassica rapa ; Hsf ; Hsp90 ; Hsp70 ; Hsp60 ; sHsp ; DnaJ
  • 刊名:Genes & Genomics
  • 出版年:2010
  • 出版时间:June 2010
  • 年:2010
  • 卷:32
  • 期:3
  • 页码:247-257
  • 全文大小:641KB
  • 参考文献:1. Babu M, Butland G, Pogoutse O, Li J, Greenblatt JF and Emili A (2009) Sequential peptide affinity purification system for the systematic isolation and identification of protein complexes from / Escherichia coli. Methods Mol. Biol. 564: 373鈥?00. CrossRef
    2. Baniwal SK, Bharti K, Chan KY, Fauth M, Ganguli A, Kotak S, Mishra SK, Nover L, Port M, and Scharf KD et al. (2004) Heat stress response in plants: a comlex game with chaperones and more than twenty heat stress transcription factors. J. Biosci. 29: 471鈥?87. CrossRef
    3. Banzet N, Richaud C, Deveaux Y, Kazmaier M, Gagnon J and Triantaphylides 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鈥?27. CrossRef
    4. B枚sl B, Grimminger V and Walter S (2006) The molecular chaperone Hsp104-a molecular machine for protein disaggregation. J. Struct. Biol. 156: 139鈥?48.
    5. Bukau B. and Horwich AL (1998) The Hsp70 and Hsp60 chaperone machines. Cell 92: 351鈥?66. CrossRef
    6. Burton BM and Baker TA (2005) Remodeling protein complexes: insights from the AAA+ unfoldase ClpX and Mu transposase. Protein Sci. 14: 1945鈥?954. CrossRef
    7. Busch W, Wunderlich M and Sch枚ffl F (2005) Identification of novel heat shock factor-dependent genes and biochemical pathways in / Arabidopsis thaliana. Plant J. 41: 1鈥?4. CrossRef
    8. Cazal茅 AC, Cl茅ment M, Chiarenza S, Roncato MA, Pochon N, Creff A, Marin E, Leonhardt N and No毛l LD (2009) Altered expression of cytosolic/nuclear HSC70-1 molecular chaperone affects development and abiotic stress tolerance in / Arabidopsis thaliana. J. Exp. Bot. 60:2653鈥?664. CrossRef
    9. Charng Y, Liu H, Liu N, Chi W, Wang C, Chang S and Wang T (2007) A heat-inducible transcription factor, HsfA2, is required for extension of acquired thermotolerance in / Arabidopsis. Plant Physiol. 143: 251鈥?62. CrossRef
    10. Cheong YH, Chang HS, Gupta R, Wang X, Zhu T and Luan S (2002) Transcriptional profiling reveals novel interactions between wounding, pathogen, abiotic stress, and hormonal responses in / Arabidopsis. Plant Physiol. 129: 661鈥?77. CrossRef
    11. Cho J, Koo DH, Nam YW, Han CT, Lim HT, Bang JW and Hur Y (2005) Isolation and characterization of cDNA clones expressed under male sex expression conditions in a monoecious cucumber plant ( / Cucumis sativus L. cv. Winter Long). Euphytica 146: 271鈥?81. CrossRef
    12. Desikan R, Mackerness SAH, Hancock JT and Neill SJ (2001) Regulation of the / Arabidopsis transcriptome by oxidative stress. Plant Physiol. 127: 159鈥?72. CrossRef
    13. Dixon DP, Skipsey M, Grundy NM and Edwards R (2005) Stress-induced protein S-glutathionylation in / Arabido- psis. Plant Physiol. 138: 2233鈥?244. CrossRef
    14. Frydman J (2001) Folding of newly translated proteins / in vivo: the role of molecular chaperones. Annu. Rev. Biochem. 70: 603鈥?47. CrossRef
    15. Fu X, Jiao W and Chang Z (2006) Phylogenetic and biochemical studies reveal a potential evolutionary origin of small heat shock proteins of animals from bacterial class A. J. Mol. Evol. 62: 257鈥?66. CrossRef
    16. Giacomelli L, Rudella A and Wijk KJ (2006) High light response of the thylakoid proteome in / Arabidopsis wild type and the ascorbate-deficient mutant / vtc2-2. A comparative proteomics study. Plant Physiol. 141: 685鈥?01. CrossRef
    17. Gy枚rgyey J, Gartner A, Nemeth K, Magyar Z, Hirt H, Heberlebors E and Dudits D (1991) Alfalfa heat shock genes are differentially expressed during somatic embryogenesis. Plant Mol. Biol. 16: 999鈥?007. CrossRef
    18. Hartl FU (1996) Molecular chaperones in cellular protein folding. Nature 381: 571鈥?80. CrossRef
    19. Hihara Y, Kamei A, Kanehisa M, Kaplan A and Ikeuchi M (2001) DNA microarray analysis of cyanobacterial gene expression during acclimation to high light. Plant Cell 13: 793鈥?06. CrossRef
    20. Hinault MP, Ben-Zvi A and Goloubinoff P (2006) Chaperones and proteases: Cellular fold-controlling factors of proteins in neurodegenerative diseases and aging. J. Mol. Neurosci. 30: 249鈥?65. CrossRef
    21. Hong SW and Vierling E (2001) Hsp101 is necessary for heat tolerance but dispensable for development and germination in the absence of stress. Plant J. 27: 25鈥?5. CrossRef
    22. Huang B and Xu C (2008) Identification and characterization of proteins associated with plant tolerance to heat stress. J. Int. Plant Biol. 50: 1230鈥?237. CrossRef
    23. Hwang EW, Park SC, Byun MO, Choi M and Kwon HB (2008) Overexpression of zinc protein of / Capsicum annuum (PIF1) in tobacco enhances cold tolerance. Genes & Genomics 30: 93鈥?9.
    24. Jofr茅 A, Molinas M and Pla M (2003) A 10-kDa class-CI sHsp protects / E. coli from oxidative and high-temperature stress. Planta 217: 813鈥?19. CrossRef
    25. Kotak S, Larkindale J, Lee U, von Koskull-D枚ring P, Vierling E and Scharf KD (2007) Complexity of the heat stress response in plants. Curr. Opin. Plant Biol. 10: 310鈥?16. CrossRef
    26. Krishna P and Gloor G (2001) The Hsp90 family of proteins in / Arabidopsis thaliana. Cell Stress Chap. 6: 238鈥?46. CrossRef
    27. Kreps JA, Wu Y, Chang HS, Zhu T, Wang Xun and Harper JF (2002) Transcriptome changes for / Arabidopsis in response to salt, osmotic, and cold stress. Plant Physiol. 130: 2129鈥?141. CrossRef
    28. Larkindale J and Vierling E (2008) Core genome response involved in acclimation to high temperature. Plant Physiol. 146: 748鈥?61. CrossRef
    29. Lee BH, Won SH, Lee HS, Miyao M, Chung WI, Kim IJ and Jo J (2000) Expression of the chloroplast-localized small heat shock protein by oxidative stress in rice. Gene 245: 283鈥?90. CrossRef
    30. Lee DG, Ahsan N, Lee SH, Kang KY, Bahk JD, Lee IJ and Lee BH (2007) A proteomic approach in analyzing heat-responsive proteins in rice leaves. Proteomics 7: 3369鈥?383. CrossRef
    31. Lee U, Wie C, Escobar M, Williams B, Hong SW and Vierling E (2005) Genetic analysis reveals domain interactions of / Arabidopsis Hsp100/ClpB and cooperation with the small heat shock protein chaperone system. Plant Cell 17: 559鈥?71. CrossRef
    32. Lee U, Rioflorido I, Hong SW, Larkindale J, Waters ER and Vierling E (2006) The / Arabidopsis ClpB/Hsp100 family of proteins: chaperones for stress and chloroplast development. Plant J. 49: 115鈥?27. CrossRef
    33. Lim CJ, Yang KA, Hong JK, Choi JS, Yun DJ, Hong JC and Lim CO (2006) Gene expression profiles during heat acclimation in / Arabidopsis thalianasuspension-culture cells. J. Plant Res. 119: 373鈥?83. CrossRef
    34. Liu D, Zhang X, Cheng Y, Takano T and Liu S (2006) / rHsp90 gene expression in response to several environmental stresses in rice ( / Oryza sativa L.). Plant Physiol. Biochem. 44: 380鈥?86. CrossRef
    35. Lubaretz O and zur Nieden U (2002) Accumulation of plant small heat stress proteins in storage organs. Planta 215: 220鈥?28. CrossRef
    36. Ma C, Haslbeck M, Babujee L, Jahn O and Reumann S (2006) Identification and characterization of a stress-inducible and a constitutive small heat-shock protein targeted to the matrix of plant peroxisomes. Plant Physiol. 141: 47鈥?0. CrossRef
    37. Mayer MP and Bukau B (2005) Hsp70 chaperones: cellular functions and molecular mechanism. Cell Mol. Life Sci. 62: 670鈥?84. CrossRef
    38. Miernyk JA (1997) The 70 kDa stress-related proteins as molecular chaperones. Trends Plant Sci. 2: 80鈥?7.
    39. Miller G and Mittler R (2006) Could heat shock transcription factors function as hydrogen peroxide sensors in plants? Ann. Bot. 98: 279鈥?88. CrossRef
    40. Mittler R (2006) Abiotic stress, the field environment and stress combination. Trends Plant Sci. 11: 15鈥?9. CrossRef
    41. Nakamoto H and Vigh L (2007) The small heat shock proteins and their clients. Cell Mol. Life Sci. 64: 294鈥?06. CrossRef
    42. Nover L, Scharf KD and Neumann D (1983) Formation of cytoplasmic heat shock granules in tomato cell cultures and leaves. Mol. Cell Biol. 3: 1648鈥?655.
    43. Qiu XB, Shao YM, Miao S and Wang L (2006) The diversity of the DnaJ/Hsp40 family, the crucial partners for Hsp70 chaperones. Cell. Mol. Life Sci. 63: 2560鈥?570. CrossRef
    44. Rachmilevitch S, Huang B and Lambers H (2006) Assimilation and allocation of carbon and nitrogen of thermal and nonthermal / Agrostis species in response to high soil temperature / Agrostis species. New Phytol. 170: 479鈥?90. CrossRef
    45. Renaut J, Hausman JF and Wisniewski ME (2006) Proteomics and low-temperature studies: bridging the gap between gene expression and metabolism. Physiol. Plant. 126: 97鈥?09. CrossRef
    46. Rizhsky L, Liang H, Shuman J, Shulaev V, Davletova S and Mittler R (2004) When defense pathways collide. The response of / Arabidopsis to a combination of drought and heat stress. Plant Physiol. 134: 1683鈥?696. CrossRef
    47. Rossel JB, Wilson IW and Pogson BJ (2002) Global changes in gene expression in response to high light in / Arabidopsis. Plant Physiol. 130: 1109鈥?120. CrossRef
    48. Sabehat A, Lurie S and Weiss D (1998) Expression of small heat-shock proteins at low temperatures. Plant Physiol. 117: 651鈥?58. CrossRef
    49. Sachin K, Elizabeth V, Helmut B and von Pascal KD (2007) A novel transcriptional cascade regulating expression of heat stress proteins during seed development of / Arabidopsis. Plant Cell 19: 182鈥?95. CrossRef
    50. Sambrook J and Russell DW (2001) / Molecular Cloning: A Laboratory Manual. / 3rd Ed., CSHL Press, Cold Spring Harbor, New York.
    51. Sauer RT, Bolon DN, Burton BM, burton RE, Flynn JM, Grant RA, Hersch GL, Joshi SA, Kenniston JA, Levchenko I and et. al. (2004) Sculpting the proteome with AAA(+) proteases and disassembly machines. Cell 119: 9鈥?8. CrossRef
    52. Sch枚ffl F, Prandl R and Reindl A (1998) Regulation of the heatshock response. Plant Physiol. 117: 1135鈥?141. CrossRef
    53. Su PH and Li HM (2008) / Arabidopsisstromal 70-kD heat shock proteins are essential for plant development and important for thermotolerance of germination seeds. Plant Physiol. 146: 1231鈥?241. CrossRef
    54. Sun W, Montagu MV and Verbruggen N (2002) Small heat shock proteins and stress tolerance in plants. Biochim. Biophys. Acta 1577: 1鈥?.
    55. Sun Y and MacRae TH (2005) Small heat shock proteins: molecular structure and chaperone function. Cell Mol. Life Sci. 62: 2460鈥?476. CrossRef
    56. Sung DY and Guy CL (2003) Physiological and molecular assessment of altered expression of / Hsc70-1 in / Arabidopsis. Evidence for pleiotropic consequences. Plant Physiol. 132: 979鈥?87. CrossRef
    57. Sung DY, Kaplan F, Lee KJ and Guy CL (2003) Acquired tolerance to temperature extremes. Trends Plant Sci. 8: 179鈥?87. CrossRef
    58. Sung DY, Vierling E and Guy CL (2001) Comprehensive expression profile analysis of the / Arabidopsis Hsp70 gene family. Plant Physiol. 126: 789鈥?00. CrossRef
    59. Suzuki K, Nakanish H, Bower J, Yoder DW, Osteryoun KW and Miyagishima SY (2009) Plastid chaperonin proteins Cpn60 and Cpn60 are required for plastid division in / Arabidopsis thaliana. BMC Plant Biol. 9: 1鈥?2. CrossRef
    60. Vierling E (1991) The roles of heat shock proteins in plants. Annu. Rev. Plant Physiol. Plant Mol. Biol. 42: 579鈥?20. CrossRef
    61. Volkov RA, Panchuk II, Mullineaux PM and Sch枚ffl F (2006) Heat stress-induced H2O2 is required for effective expression of heat shock genes in / Arabidopsis. Plant Mol. Biol. 61: 733鈥?46. CrossRef
    62. Wang W, Vinocur B, Shoseyov O and Altman A (2004) Role of plant heat-shock proteins and molecular chaperones in the abiotic stress response. Trends Plant Sci. 9: 244鈥?52. CrossRef
    63. Wahid A, Gelani S, Ashraf F and Foolad MR (2007). Heat tolerance in plants: an overview. Environ Exp. Bot. 61: 199鈥?23. CrossRef
    64. Wardlaw IF and Willenbrink J (1994) Carbohydrate storage and mobilization by the culm of wheat between heading and grain maturity: the relation to sucrose synthase and sucrose-phosphate synthase. Funct. Plant Biol. 21: 255鈥?71.
    65. Waters ER, Lee GJ and Vierling E (1996) Evolution structure and function of the small heat shock protein in plants. J. Exp. Bot. 47: 325鈥?38. CrossRef
    66. Waters ER, Aevermann BD and Sanders-Reed Z (2008) Comparative analysis of the small heat shock proteins in three angiosperm genomes identifies new subfamilies and reveals diverse evolutionary patterns. Cell Stress Chap. 13: 127鈥?42. CrossRef
    67. Wehmeyer N and Vierling E (2000) The expression of small heat shock proteins in seeds responds to discrete developmental signals and suggests general protective role in desiccation tolerance. Plant Physiol. 122: 1099鈥?108. CrossRef
    68. Yamada K, Fukao Y, Hayashi M, Fukazawa M, Suxuki I and Nishimura M (2007) Cytosolic / HSP90 regulates the heat shock response that is responsible for heat acclimation in / Arabidopsis thaliana. J. Biol. Chem. 282: 37794鈥?7804. CrossRef
    69. Yamada K and Nishimura M (2008) Cytosolic heat shock protein 90 regulates heat shock transcription factor in / Arabidopsis thaliana. Plant Signal. Behav. 3: 660鈥?62.
  • 作者单位:Jeongyeo Lee (1)
    Hayoung Song (1)
    Ching-Tack Han (2)
    Yong Pyo Lim (1)
    Sang-Min Chung (3)
    Yoonkang Hur (1)

    1. Plant Genomics Institute, Chungnam National University, Daejeon, 305-764, Korea
    2. Department of Life Science, College of Natural Science, Sogang University, Seoul, 100-611, Korea
    3. Department of Life Science, Dongguk University, Seoul, 100-715, Korea
文摘
Heat-shock proteins (HSPs) and heat-shock transcription factors (HSFs) are central components of the heat-shock regulatory network and are involved in cellular responses to various forms of stresses. To examine the differences in heat shock responses (HSRs) of two comparable inbred lines of Chinese cabbage (Brassica rapa), 51 genes were selected from 130,000 Brassica rapa ESTs that belong to an HSF and six HSP families and examined their expression using RT-PCR. Two Chinese cabbage inbred lines, Chiifu and Kenshin, have different geographic origins, in that Chiifu is from temperate regions, while Kenshin is from subtropical and tropical regions. Among the 51 genes, six genes were induced, eleven were stimulated, and three were reduced in both inbred lines in response to heat shock (HS) treatment. However, eleven genes were differentially expressed between the two inbred lines. Among these genes, several appear to be involved in normal growth and chloroplast development. These data suggest that the two Chinese cabbage inbred lines have similar HSRs, but the unique HSRs allow Kenshin to develop at higher temperatures.

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