A global reorganization of the metabolome in Arabidopsis during cold acclimation is revealed by metabolic fingerprinting

被引:84
作者
Gray, GR [1 ]
Heath, D
机构
[1] Univ Saskatchewan, Dept Plant Sci, Saskatoon, SK S7N 5A8, Canada
[2] Phenomenome Discoveries Inc, Saskatoon, SK S7N 4L8, Canada
关键词
D O I
10.1111/j.1399-3054.2005.00507.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Many plants, including Arabidopsis, increase their freezing tolerance in response to low, non-freezing temperatures. This process is known as cold acclimation and involves many complex biochemical changes at the level of the metabolome. Our goal was to examine the effects of cold acclimation on the metabolome using a non-targeted metabolic fingerprinting approach. Multivariate data analyses indicate that, in Arabidopsis, a global reprogramming of metabolism occurs as a result of cold acclimation. By measuring an entire spectrum of putative metabolites based on mass-to-charge (m/z) ratios, vs. an individual or group of metabolite(s), a comprehensive, unbiased assessment of metabolic processes relative to cold acclimation was determined. Whereas leaves shifted to low temperature present metabolic profiles that are constantly changing, leaves developed at low temperature demonstrate a stable complement of components. Although it appears that some metabolic networks are modulated by the environment, others require development under low-temperature conditions for adjustment. Understanding how metabolism as a whole is regulated allows the integration of cellular, physiological and ecological attributes in a biological system, a necessity if complex traits, such as freezing tolerance, are to be modified by breeding or genetic manipulation.
引用
收藏
页码:236 / 248
页数:13
相关论文
共 63 条
[1]  
Aharoni Asaph, 2002, OMICS A Journal of Integrative Biology, V6, P217, DOI 10.1089/15362310260256882
[2]   Potential of metabolomics as a functional genomics tool [J].
Bino, RJ ;
Hall, RD ;
Fiehn, O ;
Kopka, J ;
Saito, K ;
Draper, J ;
Nikolau, BJ ;
Mendes, P ;
Roessner-Tunali, U ;
Beale, MH ;
Trethewey, RN ;
Lange, BM ;
Wurtele, ES ;
Sumner, LW .
TRENDS IN PLANT SCIENCE, 2004, 9 (09) :418-425
[3]   PLANT PRODUCTIVITY AND ENVIRONMENT [J].
BOYER, JS .
SCIENCE, 1982, 218 (4571) :443-448
[4]   Cellular and molecular aspects of iron metabolism in plants [J].
Briat, JF ;
FobisLoisy, I ;
Grignon, N ;
Lobreaux, S ;
Pascal, N ;
Savino, G ;
Thoiron, S ;
vonWiren, N ;
VanWuytswinkel, O .
BIOLOGY OF THE CELL, 1995, 84 (1-2) :69-81
[5]   Metabolomics applications of FT-ICR mass spectrometry [J].
Brown, SC ;
Kruppa, G ;
Dasseux, JL .
MASS SPECTROMETRY REVIEWS, 2005, 24 (02) :223-231
[6]   Temperature sensing and cold acclimation [J].
Browse, J ;
Xin, ZG .
CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (03) :241-246
[7]   Insights into metabolism obtained from microarray analysis [J].
Buckhout, TJ ;
Thimm, O .
CURRENT OPINION IN PLANT BIOLOGY, 2003, 6 (03) :288-296
[8]   THE MECHANISM OF CRYOPROTECTION OF PROTEINS BY SOLUTES [J].
CARPENTER, JF ;
CROWE, JH .
CRYOBIOLOGY, 1988, 25 (03) :244-255
[9]   A prominent role for the CBF cold response pathway in configuring the low-temperature metabolome of Arabidopsis [J].
Cook, D ;
Fowler, S ;
Fiehn, O ;
Thomashow, MF .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (42) :15243-15248
[10]   STABILIZATION OF DRY PHOSPHOLIPID-BILAYERS AND PROTEINS BY SUGARS [J].
CROWE, JH ;
CROWE, LM ;
CARPENTER, JF ;
WISTROM, CA .
BIOCHEMICAL JOURNAL, 1987, 242 (01) :1-10