Metabolic Profiling of a Mapping Population Exposes New Insights in the Regulation of Seed Metabolism and Seed, Fruit, and Plant Relations

被引:105
作者
Toubiana, David [1 ,2 ]
Semel, Yaniv [3 ]
Tohge, Takayuki [1 ]
Beleggia, Romina [4 ]
Cattivelli, Luigi [4 ]
Rosental, Leah [2 ]
Nikoloski, Zoran [1 ]
Zamir, Dani [3 ]
Fernie, Alisdair R. [1 ]
Fait, Aaron [2 ]
机构
[1] Max Planck Inst Mol Plant Physiol, Potsdam, Germany
[2] Ben Gurion Univ Negev, Jacob Blaustein Inst Desert Res, French Associates Inst Agr & Biotechnol Drylands, IL-84993 Sede Boqer, Israel
[3] Hebrew Univ Jerusalem, Fac Agr, Robert H Smith Inst Plant Sci & Genet Agr, IL-76100 Rehovot, Israel
[4] CRA Cereal Res Ctr, Foggia, Italy
来源
PLOS GENETICS | 2012年 / 8卷 / 03期
关键词
QUANTITATIVE TRAIT LOCUS; NATURAL ALLELIC VARIATION; ARABIDOPSIS-THALIANA; QTL ANALYSIS; LYCOPERSICON-PENNELLII; MASS-SPECTROMETRY; GENETIC-VARIATION; LINE POPULATION; TOMATO; INTROGRESSION;
D O I
10.1371/journal.pgen.1002612
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
To investigate the regulation of seed metabolism and to estimate the degree of metabolic natural variability, metabolite profiling and network analysis were applied to a collection of 76 different homozygous tomato introgression lines (ILs) grown in the field in two consecutive harvest seasons. Factorial ANOVA confirmed the presence of 30 metabolite quantitative trait loci (mQTL). Amino acid contents displayed a high degree of variability across the population, with similar patterns across the two seasons, while sugars exhibited significant seasonal fluctuations. Upon integration of data for tomato pericarp metabolite profiling, factorial ANOVA identified the main factor for metabolic polymorphism to be the genotypic background rather than the environment or the tissue. Analysis of the coefficient of variance indicated greater phenotypic plasticity in the ILs than in the M82 tomato cultivar. Broad-sense estimate of heritability suggested that the mode of inheritance of metabolite traits in the seed differed from that in the fruit. Correlation-based metabolic network analysis comparing metabolite data for the seed with that for the pericarp showed that the seed network displayed tighter interdependence of metabolic processes than the fruit. Amino acids in the seed metabolic network were shown to play a central hub-like role in the topology of the network, maintaining high interactions with other metabolite categories, i.e., sugars and organic acids. Network analysis identified six exceptionally highly co-regulated amino acids, Gly, Ser, Thr, Ile, Val, and Pro. The strong interdependence of this group was confirmed by the mQTL mapping. Taken together these results (i) reflect the extensive redundancy of the regulation underlying seed metabolism, (ii) demonstrate the tight co-ordination of seed metabolism with respect to fruit metabolism, and (iii) emphasize the centrality of the amino acid module in the seed metabolic network. Finally, the study highlights the added value of integrating metabolic network analysis with mQTL mapping.
引用
收藏
页数:22
相关论文
共 99 条
[11]   Cloning of DOG1, a quantitative trait locus controlling seed dormancy in Arabidopsis [J].
Bentsink, Leonie ;
Jowett, Jemma ;
Hanhart, Corrie J. ;
Koornneef, Maarten .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (45) :17042-17047
[12]   Quantitative genetic analysis of seed vigour and pre-emergence seedling growth traits in Brassica oleracea [J].
Bettey, M ;
Finch-Savage, WE ;
King, GJ ;
Lynn, JR .
NEW PHYTOLOGIST, 2000, 148 (02) :277-286
[13]   QTL analysis of yield traits in an advanced backcross population derived from a cultivated Andean x wild common bean (Phaseolus vulgaris L.) cross [J].
Blair, MW ;
Iriarte, G ;
Beebe, S .
THEORETICAL AND APPLIED GENETICS, 2006, 112 (06) :1149-1163
[14]   Seed development and differentiation: A role for metabolic regulation [J].
Borisjuk, L ;
Rolletschek, H ;
Radchuk, R ;
Weschke, W ;
Wobus, U ;
Weber, H .
PLANT BIOLOGY, 2004, 6 (04) :375-386
[15]  
Borisjuk L, 2002, DEVELOPMENT, V129, P1595
[16]   Gene expression prior to radicle emergence in imbibed tomato seeds [J].
Bradford, KJ ;
Chen, F ;
Cooley, MB ;
Dahal, P ;
Downie, B ;
Fukunaga, KK ;
Gee, OH ;
Gurusinghe, S ;
Mella, RA ;
Nonogaki, H ;
Wu, CT ;
Yang, H ;
Yim, KO .
SEED BIOLOGY: ADVANCES AND APPLICATIONS, 2000, :231-251
[17]   Linkage mapping of domestication loci in a large maize-teosinte backcross resource [J].
Briggs, William H. ;
McMullen, Michael D. ;
Gaut, Brandon S. ;
Doebley, John .
GENETICS, 2007, 177 (03) :1915-1928
[18]   The Complex Genetic Architecture of the Metabolome [J].
Chan, Eva K. F. ;
Rowe, Heather C. ;
Hansen, Bjarne G. ;
Kliebenstein, Daniel J. .
PLOS GENETICS, 2010, 6 (11)
[19]   Analysis of natural allelic variation of Arabidopsis seed germination and seed longevity traits between the accessions Landsberg erecta and Shakdara, using a new recombinant inbred line population [J].
Clerkx, EJM ;
El-Lithy, ME ;
Vierling, E ;
Ruys, GJ ;
Blankestijin-De Vries, H ;
Groot, SPC ;
Vreugdenhil, D ;
Koornneef, M .
PLANT PHYSIOLOGY, 2004, 135 (01) :432-443
[20]   Introgression of a quantitative trait locus for yield from Glycine soja into commercial soybean cultivars [J].
Concibido, VC ;
La Vallee, B ;
Mclaird, P ;
Pineda, N ;
Meyer, J ;
Hummel, L ;
Yang, J ;
Wu, K ;
Delannay, X .
THEORETICAL AND APPLIED GENETICS, 2003, 106 (04) :575-582