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Alteration in the chloroplastic metabolism leads to ROS accumulation in pea plants in response to plum pox virus

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dc.contributor Fundación Séneca
dc.contributor Gobierno de la Región de Murcia
dc.contributor Ministerio de Educación y Ciencia (España)
dc.creator Díaz-Vivancos, Pedro
dc.creator Clemente-Moreno, María José
dc.creator Rubio, Manuel
dc.creator Olmos, Enrique
dc.creator García, Juan Antonio
dc.creator Martínez-Gómez, Pedro
dc.creator Hernández, José Antonio
dc.date 2008-06-11T06:14:00Z
dc.date 2008-06-11T06:14:00Z
dc.date 2008-06-11T06:14:00Z
dc.date.accessioned 2017-01-31T01:38:56Z
dc.date.available 2017-01-31T01:38:56Z
dc.identifier http://hdl.handle.net/10261/4970
dc.identifier 10.1093/jxb/ern082
dc.identifier.uri http://dspace.mediu.edu.my:8181/xmlui/handle/10261/4970
dc.description In this work, we use a recombinant Plum pox virus (PPV, Sharka) encoding green fluorescent protein (GFP) to study their effect on antioxidant enzymes and protein expression at the subcellular level in pea plants, cv. Alaska. PPV had produced chlorotic spots as well as necrotic spots in the oldest leaves at 13-15 days post-inoculation (dpi). At 15 dpi, PPV was present in the chlorotic and necrotic areas, as shown by the fluorescence signal produced by the presence of the GFP. In the same areas, an accumulation of reactive oxygen species (ROS) was noticed. Studies with laser confocal and electron microscopy demonstrated that PPV accumulated in the cytosol of infected cells. In addition, PPV infection produced an alteration in the chloroplast ultrastructure, giving rise to dilated thylakoids, an increase in the number of plastoglobuli, and a decreased amount of starch content. At 3 dpi, although no changes in the oxidative stress parameters were observed, an increase in the chloroplastic hydrogen peroxide (H2O2) levels was observed, that correlated with a decrease in the enzymatic mechanisms involved in its elimination [ascorbate peroxidase (APX) and peroxidase (POX)] in this cell compartment. These results indicate that an alteration in the chloroplastic metabolism is produced in the early response to PPV. This oxidative stress is more pronounced during the development of the disease (15 dpi) judging from the increase in oxidative stress parameters as well as the imbalance in the antioxidative systems, mainly at the chloroplastic level. Finally, proteomic analyses showed that most of the changes produced by PPV infection with regard to protein expression at the subcellular level were related mainly with photosynthesis and carbohydrate metabolism. It seems that PPV infection has some effect on PS II, directly or indirectly, by decreasing the amount of Rubisco, oxygen-evolving enhancer, and PS II stability factor proteins. The results indicate that Sharka symptoms observed in pea leaves could be due to an imbalance in antioxidant systems as well as to an increased ROS generation in chloroplasts, induced probably by a disturbance of the electron transport chain, suggesting that chloroplasts can be a source of oxidative stress during viral disease development.
dc.description This work was supported by the projects 05571/PI/07 (Fundación Séneca, Agencia de Ciencia y Tecnología de la Región de Murcia), and 23BIO2005-04-6444 (Comunidad Autónoma de la Región de Murcia). MJCM thanks the Spanish Ministry of Science and Education for her FPI research fellowship
dc.description Peer reviewed
dc.format 1389115 bytes
dc.format application/pdf
dc.language eng
dc.relation Journal Of Experimental Botany
dc.relation Vol 59, 2147-2160
dc.rights openAccess
dc.subject 2D Electrophoresis
dc.subject oxidative stress
dc.subject Pisum sativum L.
dc.subject plum pox virus
dc.subject Sharka
dc.title Alteration in the chloroplastic metabolism leads to ROS accumulation in pea plants in response to plum pox virus
dc.type Artículo


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