Mechanisms to Mitigate the Trade-Off between Growth and Defense

被引:382
作者
Karasov, Talia L. [1 ]
Chae, Eunyoung [1 ]
Herman, Jacob J. [2 ]
Bergelson, Joy [2 ]
机构
[1] Max Planck Inst Dev Biol, Dept Mol Biol, D-72076 Tubingen, Germany
[2] Univ Chicago, Dept Ecol & Evolut, 940 E 57Th St, Chicago, IL 60637 USA
关键词
DISEASE RESISTANCE GENE; TOBACCO-MOSAIC-VIRUS; INDUCED PLANT-RESISTANCE; GENOME-WIDE SURVEY; ARABIDOPSIS-THALIANA; HYBRID NECROSIS; SALICYLIC-ACID; FITNESS COSTS; IMMUNE-RESPONSES; RPS2-MEDIATED RESISTANCE;
D O I
10.1105/tpc.16.00931
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Plants have evolved an array of defenses against pathogens. However, mounting a defense response frequently comes with the cost of a reduction in growth and reproduction, carrying critical implications for natural and agricultural populations. This review focuses on how costs are generated and whether and how they can be mitigated. Most well-characterized growthdefense trade-offs stem from antagonistic crosstalk among hormones rather than an identified metabolic expenditure. A primary way plants mitigate such costs is through restricted expression of resistance; this can be achieved through inducible expression of defense genes or by the concentration of defense to particular times or tissues. Defense pathways can be primed for more effective induction, and primed states can be transmitted to offspring. We examine the resistance (R) genes as a case study of how the toll of defense can be generated and ameliorated. The fine-scale regulation of R genes is critical to alleviate the burden of their expression, and the genomic organization of R genes into coregulatory modules reduces costs. Plants can also recruit protection from other species. Exciting new evidence indicates that a plant's genotype influences the microbiome composition, lending credence to the hypothesis that plants shape their microbiome to enhance defense.
引用
收藏
页码:666 / 680
页数:15
相关论文
共 174 条
[1]   Microbial Hub Taxa Link Host and Abiotic Factors to Plant Microbiome Variation [J].
Agler, Matthew T. ;
Ruhe, Jonas ;
Kroll, Samuel ;
Morhenn, Constanze ;
Kim, Sang-Tae ;
Weigel, Detlef ;
Kemen, Eric M. .
PLOS BIOLOGY, 2016, 14 (01)
[2]   Transgenerational consequences of plant responses to herbivory: An adaptive maternal effect? [J].
Agrawal, AA .
AMERICAN NATURALIST, 2001, 157 (05) :555-569
[3]   Transgenerational plasticity is sex-dependent and persistent in yellow monkeyflower (Mimulus guttatus) [J].
Akkerman, Kayla C. ;
Sattarin, Arash ;
Kelly, John K. ;
Scoville, Alison G. .
ENVIRONMENTAL EPIGENETICS, 2016, 2 (02)
[4]   Drought-induced trans-generational tradeoff between stress tolerance and defence: consequences for range limits? [J].
Alsdurf, Jacob D. ;
Ripley, Tayler J. ;
Matzner, Steven L. ;
Siemens, David H. .
AOB PLANTS, 2013, 5
[5]   COEVOLUTION OF HOSTS AND PARASITES [J].
ANDERSON, RM ;
MAY, RM .
PARASITOLOGY, 1982, 85 (OCT) :411-426
[6]   Runaway cell death, but not basal disease resistance, in Isd1 is SA- and NIM1/NPR1-dependent [J].
Aviv, DH ;
Rustérucci, C ;
Holt, BF ;
Dietrich, RA ;
Parker, JE ;
Dangl, JL .
PLANT JOURNAL, 2002, 29 (03) :381-391
[7]   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
[8]   Just in time Circadian defense patterns and the optimal defense hypothesis [J].
Meldau, Stefan ;
Baldwin, Ian T. .
PLANT SIGNALING & BEHAVIOR, 2013, 8 (06) :e24410-1
[9]   Allocation of nitrogen to an inducible defense and seed production in Nicotiana attenuata [J].
Baldwin, IT ;
Gorham, D ;
Schmelz, EA ;
Lewandowski, CA ;
Lynds, GY .
OECOLOGIA, 1998, 115 (04) :541-552
[10]   The 'prime-ome': towards a holistic approach to priming [J].
Balmer, Andrea ;
Pastor, Victoria ;
Gamir, Jordi ;
Flors, Victor ;
Mauch-Mani, Brigitte .
TRENDS IN PLANT SCIENCE, 2015, 20 (07) :443-452