Perspectives on deciphering mechanisms underlying plant heat stress response and thermotolerance

被引:247
作者
Bokszczanin, Kamila L. [1 ]
Fragkostefanakis, Sotirios [2 ]
机构
[1] GenXPro GmbH, D-60438 Frankfurt, Germany
[2] Goethe Univ Frankfurt, Dept Biosci, D-60054 Frankfurt, Germany
关键词
thermotolerance; heat stress; pollen; transcriptomic; proteomic; metabolomic; epigenetic; SORGHUM SORGHUM-BICOLOR; S-NITROSOGLUTATHIONE REDUCTASE; HIGH-TEMPERATURE INHIBITION; SHOCK TRANSCRIPTION FACTOR; TRANSGENIC SOYBEAN PLANTS; HEXAPLOID WHEAT-GRAIN; FACTOR EF-TU; LYCOPERSICON-ESCULENTUM; MOLECULAR CHAPERONES; MALE-STERILITY;
D O I
10.3389/fpls.2013.00315
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Global warming is a major threat for agriculture and food safety and in many cases the negative effects are already apparent. The current challenge of basic and applied plant science is to decipher the molecular mechanisms of heat stress response (HSR) and thermotolerance in detail and use this information to identify genotypes that will withstand unfavorable environmental conditions. Nowadays X-omics approaches complement the findings of previous targeted studies and highlight the complexity of HSR mechanisms giving information for so far unrecognized genes, proteins and metabolites as potential key players of thermotolerance. Even more, roles of epigenetic mechanisms and the involvement of small RNAs in thermotolerance are currently emerging and thus open new directions of yet unexplored areas of plant HSR. In parallel it is emerging that although the whole plant is vulnerable to heat, specific organs are particularly sensitive to elevated temperatures. This has redirected research from the vegetative to generative tissues. The sexual reproduction phase is considered as the most sensitive to heat and specifically pollen exhibits the highest sensitivity and frequently an elevation of the temperature just a few degrees above the optimum during pollen development can have detrimental effects for crop production. Compared to our knowledge on HSR of vegetative tissues, the information on pollen is still scarce. Nowadays, several techniques for high-throughput X-omics approaches provide major tools to explore the principles of pollen HSR and thermotolerance mechanisms in specific genotypes. The collection of such information will provide an excellent support for improvement of breeding programs to facilitate the development of tolerant cultivars. The review aims at describing the current knowledge of thermotolerance mechanisms and the technical advances which will foster new insights into this process.
引用
收藏
页数:20
相关论文
共 270 条
[1]   The Arabidopsis MALE STERILITY 2 protein shares similarity with reductases in elongation/condensation complexes [J].
Aarts, MGM ;
Hodge, R ;
Kalantidis, K ;
Florack, D ;
Wilson, ZA ;
Mulligan, BJ ;
Stiekema, WJ ;
Scott, R ;
Pereira, A .
PLANT JOURNAL, 1997, 12 (03) :615-623
[2]   High-temperature induction of male sterility during barley (Hordeum vulgare L.) anther development is mediated by transcriptional inhibition [J].
Abiko, M ;
Akibayashi, K ;
Sakata, T ;
Kimura, M ;
Kihara, M ;
Itoh, K ;
Asamizu, E ;
Sato, S ;
Takahashi, H ;
Higashitani, A .
SEXUAL PLANT REPRODUCTION, 2005, 18 (02) :91-100
[3]   Enhanced formaldehyde detoxification by overexpression of glutathione-dependent formaldehyde dehydrogenase from Arabidopsis [J].
Achkor, H ;
Díaz, M ;
Fernández, MR ;
Biosca, JA ;
Parés, X ;
Martínez, MC .
PLANT PHYSIOLOGY, 2003, 132 (04) :2248-2255
[4]   HEAT INJURY DURING FLORAL DEVELOPMENT IN COWPEA (VIGNA-UNGUICULATA, FABACEAE) [J].
AHMED, FE ;
HALL, AE ;
DEMASON, DA .
AMERICAN JOURNAL OF BOTANY, 1992, 79 (07) :784-791
[5]   Plant molecular stress responses face climate change [J].
Ahuja, Ishita ;
de Vos, Ric C. H. ;
Bones, Atle M. ;
Hall, Robert D. .
TRENDS IN PLANT SCIENCE, 2010, 15 (12) :664-674
[6]   Glycinebetaine alleviates the inhibitory repair of photosystem II effect of moderate heat stress on the during photoinhibition [J].
Allakhverdiev, Suleyman I. ;
Los, Dmitry A. ;
Mohanty, Prasanna ;
Nishiyama, Yoshitaka ;
Murata, Norio .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2007, 1767 (12) :1363-1371
[7]   An Introduction to Liquid Chromatography-Mass Spectrometry Instrumentation Applied in Plant Metabolomic Analyses [J].
Allwood, J. William ;
Goodacre, Royston .
PHYTOCHEMICAL ANALYSIS, 2010, 21 (01) :33-47
[8]   The effect of high temperature and high atmospheric CO2 on carbohydrate changes in bell pepper (Capsicum annuum) pollen in relation to its germination [J].
Aloni, B ;
Peet, M ;
Pharr, M ;
Karni, L .
PHYSIOLOGIA PLANTARUM, 2001, 112 (04) :505-512
[9]   Environmentally induced phenotypes and DNA methylation: how to deal with unpredictable conditions until the next generation and after [J].
Angers, Bernard ;
Castonguay, Emilie ;
Massicotte, Rachel .
MOLECULAR ECOLOGY, 2010, 19 (07) :1283-1295
[10]   TRACE DETECTION OF MODIFIED DNA BASES VIA MOVING-BELT LIQUID-CHROMATOGRAPHY MASS-SPECTROMETRY USING ELECTROPHORETIC DERIVATIZATION AND NEGATIVE CHEMICAL IONIZATION [J].
ANNAN, RS ;
KRESBACH, GM ;
GIESE, RW ;
VOUROS, P .
JOURNAL OF CHROMATOGRAPHY, 1989, 465 (02) :285-296