Recovery from heat, salt and osmotic stress in Physcomitrella patens requires a functional small heat shock protein PpHsp16.4

被引:45
|
作者
Ruibal, Cecilia [1 ]
Castro, Alexandra [1 ]
Carballo, Valentina [1 ]
Szabados, Laszlo [2 ]
Vidal, Sabina [1 ]
机构
[1] Univ Republica, Fac Ciencias, Lab Biol Mol Vegetal, Montevideo 11400, Uruguay
[2] Biol Res Ctr, Inst Plant Biol, H-6726 Szeged, Hungary
来源
BMC PLANT BIOLOGY | 2013年 / 13卷
关键词
Small heat shock proteins; Osmotic stress; Salinity; Physcomitrella patens; TISSUE-SPECIFIC EXPRESSION; ARABIDOPSIS-THALIANA; SALICYLIC-ACID; DESICCATION TOLERANCE; STABLE TRANSFORMATION; CHAPERONE ACTIVITY; HYDROGEN-PEROXIDE; OXIDATIVE STRESS; ALPHA-CRYSTALLIN; PHOTOSYSTEM-II;
D O I
10.1186/1471-2229-13-174
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Plant small heat shock proteins (sHsps) accumulate in response to various environmental stresses, including heat, drought, salt and oxidative stress. Numerous studies suggest a role for these proteins in stress tolerance by preventing stress-induced protein aggregation as well as by facilitating protein refolding by other chaperones. However, in vivo evidence for the involvement of sHsps in tolerance to different stress factors is still missing, mainly due to the lack of appropriate mutants in specific sHsp genes. Results: In this study we characterized the function of a sHsp in abiotic stress tolerance in the moss Physcomitrella patens, a model for primitive land plants. Using suppression subtractive hybridization, we isolated an abscisic acid-upregulated gene from P. patens encoding a 16.4 kDa cytosolic class II sHsp. PpHsp16.4 was also induced by salicylic acid, dithiothreitol (DTT) and by exposure to various stimuli, including osmotic and salt stress, but not by oxidative stress-inducing compounds. Expression of the gene was maintained upon stress relief, suggesting a role for this protein in the recovery stage. PpHsp16.4 is encoded by two identical genes arranged in tandem in the genome. Targeted disruption of both genes resulted in the inability of plants to recover from heat, salt and osmotic stress. In vivo localization studies revealed that PpHsp16.4 localized in cytosolic granules in the vicinity of chloroplasts under non stress conditions, suggesting possible distinct roles for this protein under stress and optimal growth. Conclusions: We identified a member of the class II sHsp family that showed hormonal and abiotic stress gene regulation. Induction of the gene by DTT treatment suggests that damaged proteins may act as signals for the stress-induction of PpHsp16.4. The product of this gene was shown to localize in cytosolic granules near the chloroplasts, suggesting a role for the protein in association with these organelles. Our study provides the first direct genetic evidence for a role of a sHsp in osmotic and salt stress tolerance, and supports a function for this protein particularly during the stress recovery stage of P. patens.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Recovery from heat, salt and osmotic stress in Physcomitrella patens requires a functional small heat shock protein PpHsp16.4
    Cecilia Ruibal
    Alexandra Castro
    Valentina Carballo
    László Szabados
    Sabina Vidal
    BMC Plant Biology, 13
  • [2] Physcomitrella patens DNA methyltransferase 2 is required for recovery from salt and osmotic stress
    Arya, Deepshikha
    Kapoor, Sanjay
    Kapoor, Meenu
    FEBS JOURNAL, 2016, 283 (03) : 556 - 570
  • [3] CaHSP16.4, a small heat shock protein gene in pepper, is involved in heat and drought tolerance
    Huang, Liu-Jun
    Cheng, Guo-Xin
    Khan, Abid
    Wei, Ai-Min
    Yu, Qing-Hui
    Yang, Sheng-Bao
    Luo, De-Xu
    Gong, Zhen-Hui
    PROTOPLASMA, 2019, 256 (01) : 39 - 51
  • [4] A Stromal Heat Shock Protein 70 System Functions in Protein Import into Chloroplasts in the Moss Physcomitrella patens
    Shi, Lan-Xin
    Theg, Steven M.
    PLANT CELL, 2010, 22 (01) : 205 - 220
  • [5] YocM a small heat shock protein can protect Bacillus subtilis cells during salt stress
    Hantke, Ingo
    Schaefer, Heinrich
    Janczikowski, Armgard
    Turgay, Kuersad
    MOLECULAR MICROBIOLOGY, 2019, 111 (02) : 423 - 440
  • [6] Functional characterization of a small heat shock protein from Mycobacterium leprae
    Nirmala Lini
    Elengikal Abdul Azeez Rehna
    Sugathan Shiburaj
    Jayapal Jeya Maheshwari
    Nallakandy Panagadan Shankernarayan
    Kuppamuthu Dharmalingam
    BMC Microbiology, 8
  • [7] Effect of osmotic stress and heat shock in recombinant protein overexpression and crystallization
    Oganesyan, Natalia
    Ankoudinova, Irina
    Kim, Sung-Hou
    Kim, Rosalind
    PROTEIN EXPRESSION AND PURIFICATION, 2007, 52 (02) : 280 - 285
  • [8] Evolution and functional diversification of the small heat shock protein/α-crystallin family in higher plants
    Gabriel Bondino, Hernan
    Marta Valle, Estela
    ten Have, Arjen
    PLANTA, 2012, 235 (06) : 1299 - 1313
  • [9] A Dual Role for the Chloroplast Small Heat Shock Protein of Chenopodium album including Protection from Both Heat and Metal Stress
    Ul Haq, Noor
    Raza, Sana
    Luthe, Dawn S.
    Heckathorn, Scott A.
    Shakeel, Samina N.
    PLANT MOLECULAR BIOLOGY REPORTER, 2013, 31 (02) : 398 - 408
  • [10] Overexpression of Small Heat Shock Protein Enhances Heat- and Salt-Stress Tolerance of Bifidobacterium longum NCC2705
    Khaskheli, Gul Bahar
    Zuo, FangLei
    Yu, Rui
    Chen, ShangWu
    CURRENT MICROBIOLOGY, 2015, 71 (01) : 8 - 15