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Aphid Resistance in Medicago Truncatula Involves Antixenosis and Phloem-specific, Inducible Antibiosis, and Maps to a Single Locus Flanked by NBS-LRR Resistance Gene Analogs

Overview
Journal Plant Physiol
Specialty Physiology
Date 2005 Mar 22
PMID 15778464
Citations 70
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Abstract

Aphids and related insects feed from a single cell type in plants: the phloem sieve element. Genetic resistance to Acyrthosiphon kondoi Shinji (bluegreen aphid or blue alfalfa aphid) has been identified in Medicago truncatula Gaert. (barrel medic) and backcrossed into susceptible cultivars. The status of M. truncatula as a model legume allows an in-depth study of defense against this aphid at physiological, biochemical, and molecular levels. In this study, two closely related resistant and susceptible genotypes were used to characterize the aphid-resistance phenotype. Resistance conditions antixenosis since migratory aphids were deterred from settling on resistant plants within 6 h of release, preferring to settle on susceptible plants. Analysis of feeding behavior revealed the trait affects A. kondoi at the level of the phloem sieve element. Aphid reproduction on excised shoots demonstrated that resistance requires an intact plant. Antibiosis against A. kondoi is enhanced by prior infestation, indicating induction of this phloem-specific defense. Resistance segregates as a single dominant gene, AKR (Acyrthosiphon kondoi resistance), in two mapping populations, which have been used to map the locus to a region flanked by resistance gene analogs predicted to encode the CC-NBS-LRR subfamily of resistance proteins. This work provides the basis for future molecular analysis of defense against phloem parasitism in a plant model system.

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References
1.
Zhu-Salzman K, Salzman R, Ahn J, Koiwa H . Transcriptional regulation of sorghum defense determinants against a phloem-feeding aphid. Plant Physiol. 2004; 134(1):420-31. PMC: 316321. DOI: 10.1104/pp.103.028324. View

2.
Brotman Y, Silberstein L, Kovalski I, Perin C, Dogimont C, Pitrat M . Resistance gene homologues in melon are linked to genetic loci conferring disease and pest resistance. Theor Appl Genet. 2003; 104(6-7):1055-1063. DOI: 10.1007/s00122-001-0808-x. View

3.
Zhu H, Cannon S, Young N, Cook D . Phylogeny and genomic organization of the TIR and non-tIR NBS-LRR resistance gene family in Medicago truncatula. Mol Plant Microbe Interact. 2002; 15(6):529-39. DOI: 10.1094/MPMI.2002.15.6.529. View

4.
Kessler A, Baldwin I . Plant responses to insect herbivory: the emerging molecular analysis. Annu Rev Plant Biol. 2002; 53:299-328. DOI: 10.1146/annurev.arplant.53.100301.135207. View

5.
Penmetsa R, Cook D . Production and characterization of diverse developmental mutants of Medicago truncatula. Plant Physiol. 2000; 123(4):1387-98. PMC: 59096. DOI: 10.1104/pp.123.4.1387. View