Natural Resistance to Clover yellow vein virus in Beans Controlled by a Single Recessive Locus
Open Access
- 1 November 2003
- journal article
- research article
- Published by Scientific Societies in Molecular Plant-Microbe Interactions®
- Vol. 16 (11) , 994-1002
- https://doi.org/10.1094/mpmi.2003.16.11.994
Abstract
We characterized the resistance of the common bean cv. Jolanda to Clover yellow vein virus no. 30 (ClYVV). After inoculation, the virus was detected in neither inoculated nor upper leaves, suggesting that the resistance operates at either the viral replication or cell-to-cell movement level. To analyze the mechanism of resistance, we developed a green fluorescent protein (GFP)-tagged ClYVV, and monitored GFP fluorescence at sites of infection on ClYVV-inoculated leaves. No GFP fluorescence was detected in Jolanda, whereas its expression in single cells and spread on inoculated leaves were observed clearly in susceptible cultivars. ClYVV-introduced Jolanda cells were found to be still viable; therefore, it is unlikely that the restriction of multiplication was due to rapid cell death. Genetic analysis indicated that a single recessive locus controlled the resistant phenotype of Jolanda. We designated this locus desc (determinant of susceptibility to ClYVV). Meanwhile, a spontaneous mutant virus that overcomes the resistance (ClYVV-Br) was isolated. Inoculation assays using chimeric viruses suggested that a viral ge-nome-linked protein (VPg) might be the avirulence determinant. The resistance mechanism may be associated with the role of VPg in the viral infection cycle.Keywords
This publication has 28 references indexed in Scilit:
- Viral Genome-Linked Protein (VPg) Controls Accumulation and Phloem-Loading of a Potyvirus in Inoculated Potato LeavesMolecular Plant-Microbe Interactions®, 2002
- A New Pathotype of Pea seedborne mosaic virus Explained by Properties of the P3-6k1- and Viral Genome-Linked Protein (VPg)-Coding RegionsMolecular Plant-Microbe Interactions®, 2002
- Tobamovirus Replicase Coding Region Is Involved in Cell-to-Cell MovementJournal of Virology, 2001
- Recessive Resistance in Pisum sativum and Potyvirus Pathotype Resolved in a Gene-for-Cistron Correspondence between Host and VirusJournal of Virology, 2001
- Early selection for extreme resistance to potato virus Y and tobacco etch virus in potato using a beta-glucuronidase-tagged virusPlant Breeding, 2000
- A Single Amino Acid Change in Viral Genome-Associated Protein of Potato Virus Y Correlates with Resistance Breaking in ‘Virgin A Mutant’ TobaccoPhytopathology®, 1999
- Potyvirus Genome-Linked Protein (VPg) Determines Pea Seed-Borne Mosaic Virus Pathotype-Specific Virulence in Pisum sativumMolecular Plant-Microbe Interactions®, 1998
- Construction and analysis of infectious transcripts from a resistance-breaking strain of tobacco vein mottling potyvirusArchiv für die gesamte Virusforschung, 1996
- Efficient Promoter Cassettes for Enhanced Expression of Foreign Genes in Dicotyledonous and Monocotyledonous PlantsPlant and Cell Physiology, 1996
- Identification of Genes Required for the Function of Non-Race-Specific mlo Resistance to Powdery Mildew in Barley.Plant Cell, 1996