Ecological genetics and genomics of plant defences: evidence and approaches

被引:47
作者
Anderson, Jill T. [1 ]
Mitchell-Olds, Thomas [1 ]
机构
[1] Duke Univ, Inst Genome Sci & Policy, Dept Biol, Durham, NC 27708 USA
关键词
candidate gene; genome wide association studies; plant defence; population genomics; transgenics; quantitative trait loci; QUANTITATIVE TRAIT LOCI; SUPPRESSION SUBTRACTIVE HYBRIDIZATION; DIFFERENTIALLY EXPRESSED GENES; ARABIDOPSIS-THALIANA; NICOTIANA-ATTENUATA; NEXT-GENERATION; TRANSCRIPTIONAL RESPONSES; INTRASPECIFIC VARIATION; EVOLUTIONARY ECOLOGY; SOMACLONAL VARIATION;
D O I
10.1111/j.1365-2435.2010.01785.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
P>1. Herbivores exert significant selection on plants, and plants have evolved a variety of constitutive and inducible defences to resist and tolerate herbivory. Assessing the genetic mechanisms that influence defences against herbivores will deepen our understanding of the evolution of essential phenotypic traits. 2. Ecogenomics is a powerful interdisciplinary approach that can address fundamental questions about the ecology and evolutionary biology of species, such as: which evolutionary forces maintain variation within a population? and What is the genetic architecture of adaptation? This field seeks to identify gene regions that influence ecologically important traits, assess the fitness consequences under natural conditions of alleles at key quantitative trait loci (QTLs), and test how the abiotic and biotic environment affects gene expression. 3. Here, we review ecogenomics techniques and emphasize how this framework can address long-standing and emerging questions relating to anti-herbivore defences in plants. For example, ecogenomics tools can be used to investigate: inducible vs. constitutive defences; tradeoffs between resistance and tolerance; adaptation to the local herbivore community; selection on alleles that confer resistance and tolerance in natural populations; and whether different genes are activated in response to specialist vs. generalist herbivores and to different types of damage. 4. Ecogenomic studies can be conducted with model species, such as Arabidopsis, or their relatives, in which case myriad molecular tools are already available. Burgeoning sequence data will also facilitate ecogenomic studies of non-model species. Throughout this paper, we highlight approaches that are particularly suitable for ecological studies of non-model organisms, discuss the benefits and disadvantages of specific techniques and review bioinformatic tools for analysing data. 5. We focus on established and promising techniques, such as QTL mapping with pedigreed populations, genome wide association studies, transcription profiling strategies, population genomics and transgenic methodologies. Many of these techniques are complementary and can be used jointly to investigate the genetic architecture of defence traits and selection on alleles in nature.
引用
收藏
页码:312 / 324
页数:13
相关论文
共 154 条
[1]  
Agrawal AA, 2006, ECOLOGY, V87, pS132, DOI 10.1890/0012-9658(2006)87[132:PDS]2.0.CO
[2]  
2
[3]   Current trends in the evolutionary ecology of plant defence [J].
Agrawal, Anurag A. .
FUNCTIONAL ECOLOGY, 2011, 25 (02) :420-432
[4]   Genome-wide association study of 107 phenotypes in Arabidopsis thaliana inbred lines [J].
Atwell, Susanna ;
Huang, Yu S. ;
Vilhjalmsson, Bjarni J. ;
Willems, Glenda ;
Horton, Matthew ;
Li, Yan ;
Meng, Dazhe ;
Platt, Alexander ;
Tarone, Aaron M. ;
Hu, Tina T. ;
Jiang, Rong ;
Muliyati, N. Wayan ;
Zhang, Xu ;
Amer, Muhammad Ali ;
Baxter, Ivan ;
Brachi, Benjamin ;
Chory, Joanne ;
Dean, Caroline ;
Debieu, Marilyne ;
de Meaux, Juliette ;
Ecker, Joseph R. ;
Faure, Nathalie ;
Kniskern, Joel M. ;
Jones, Jonathan D. G. ;
Michael, Todd ;
Nemri, Adnane ;
Roux, Fabrice ;
Salt, David E. ;
Tang, Chunlao ;
Todesco, Marco ;
Traw, M. Brian ;
Weigel, Detlef ;
Marjoram, Paul ;
Borevitz, Justin O. ;
Bergelson, Joy ;
Nordborg, Magnus .
NATURE, 2010, 465 (7298) :627-631
[5]   Use of cDNA-AFLP for transcript profiling in narrow genetic pools;: for example, cucumber (Cucumis sativus L.) [J].
Bae, K. M. ;
Kwon, Y. S. ;
Cho, I. H. ;
Yi, S. I. . .
PLANT BREEDING, 2006, 125 (05) :488-492
[6]   A genome-wide survey of R gene polymorphisms in Arabidopsis [J].
Bakker, Erica G. ;
Toomajian, Christopher ;
Kreitman, Martin ;
Bergelson, Joy .
PLANT CELL, 2006, 18 (08) :1803-1818
[7]   The PHYTOCHROME C photoreceptor gene mediates natural variation in flowering and growth responses of Arabidopsis thaliana [J].
Balasubramanian, Sureshkumar ;
Sureshkumar, Sridevi ;
Agrawal, Mitesh ;
Michael, Todd P. ;
Wessinger, Carrie ;
Maloof, Julin N. ;
Clark, Richard ;
Warthmann, Norman ;
Chory, Joanne ;
Weigel, Detlef .
NATURE GENETICS, 2006, 38 (06) :711-715
[8]   Volatile signaling in plant-plant interactions: "Talking trees" in the genomics era [J].
Baldwin, IT ;
Halitschke, R ;
Paschold, A ;
von Dahl, CC ;
Preston, CA .
SCIENCE, 2006, 311 (5762) :812-815
[9]   The cinnamyl alcohol dehydrogenase gene family in Populus: phylogeny, organization, and expression [J].
Barakat, Abdelali ;
Bagniewska-Zadworna, Agnieszka ;
Choi, Alex ;
Plakkat, Urmila ;
DiLoreto, Denis S. ;
Yellanki, Priyadarshini ;
Carlson, John E. .
BMC PLANT BIOLOGY, 2009, 9
[10]  
Basten C.J., 2004, QTL Cartographer