Literature DB >> 23425100

Water deficit modulates the response of Vitis vinifera to the Pierce's disease pathogen Xylella fastidiosa.

Hong-Kyu Choi1, Alberto Iandolino, Francisco Goes da Silva, Douglas R Cook.   

Abstract

Pierce's disease, caused by the bacterium Xylella fastidiosa, is one of the most devastating diseases of cultivated grape, currently restricted to the Americas. To test the long-standing hypothesis that Pierce's disease results from pathogen-induced drought stress, we used the Affymetrix Vitis GeneChip to compare the transcriptional response of Vitis vinifera to Xylella infection, water deficit, or a combination of the two stresses. The results reveal a redirection of gene transcription involving 822 genes with a minimum twofold change (P < 0.05), including the upregulation of transcripts for phenylpropanoid and flavonoid biosynthesis, pathogenesis-related proteins, abscisic acid- and jasmonic acid-responsive biosynthesis, and downregulation of transcripts related to photosynthesis, growth, and nutrition. Although the transcriptional response of plants to Xylella infection was largely distinct from the response of healthy plants to water stress, we find that 138 of the pathogen-induced genes exhibited a significantly stronger transcriptional response when plants were simultaneously exposed to infection and drought stress, suggesting a strong interaction between disease and water deficit. This interaction between drought stress and disease was mirrored in planta at the physiological level for aspects of water relations and photosynthesis and in terms of the severity of disease symptoms and the extent of pathogen colonization, providing a molecular correlate of the classical concept of the disease triangle in which environment impacts disease severity.

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Year:  2013        PMID: 23425100     DOI: 10.1094/MPMI-09-12-0217-R

Source DB:  PubMed          Journal:  Mol Plant Microbe Interact        ISSN: 0894-0282            Impact factor:   4.171


  26 in total

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2.  Plant defense factors involved in Olea europaea resistance against Xylella fastidiosa infection.

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4.  Mass Spectrometry-Based Targeted Lipidomics and Supervised Machine Learning Algorithms in Detecting Disease, Cultivar, and Treatment Biomarkers in Xylella fastidiosa subsp. pauca-Infected Olive Trees.

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Journal:  Front Plant Sci       Date:  2022-04-22       Impact factor: 6.627

5.  N-acetylcysteine in agriculture, a novel use for an old molecule: focus on controlling the plant-pathogen Xylella fastidiosa.

Authors:  Lígia S Muranaka; Thais E Giorgiano; Marco A Takita; Moacir R Forim; Luis F C Silva; Helvécio D Coletta-Filho; Marcos A Machado; Alessandra A de Souza
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6.  Cross-family translational genomics of abiotic stress-responsive genes between Arabidopsis and Medicago truncatula.

Authors:  Daejin Hyung; Chaeyoung Lee; Jin-Hyun Kim; Dongwoon Yoo; Young-Su Seo; Soon-Chun Jeong; Jai-Heon Lee; Youngsoo Chung; Ki-Hong Jung; Douglas R Cook; Hong-Kyu Choi
Journal:  PLoS One       Date:  2014-03-27       Impact factor: 3.240

7.  The bacterial pathogen Xylella fastidiosa affects the leaf ionome of plant hosts during infection.

Authors:  Leonardo De La Fuente; Jennifer K Parker; Jonathan E Oliver; Shea Granger; Phillip M Brannen; Edzard van Santen; Paul A Cobine
Journal:  PLoS One       Date:  2013-05-07       Impact factor: 3.240

Review 8.  Shared and unique responses of plants to multiple individual stresses and stress combinations: physiological and molecular mechanisms.

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Journal:  Front Plant Sci       Date:  2015-09-16       Impact factor: 5.753

9.  Drought Stress Predominantly Endures Arabidopsis thaliana to Pseudomonas syringae Infection.

Authors:  Aarti Gupta; Sandeep K Dixit; Muthappa Senthil-Kumar
Journal:  Front Plant Sci       Date:  2016-06-07       Impact factor: 5.753

10.  Understanding the Impact of Drought on Foliar and Xylem Invading Bacterial Pathogen Stress in Chickpea.

Authors:  Ranjita Sinha; Aarti Gupta; Muthappa Senthil-Kumar
Journal:  Front Plant Sci       Date:  2016-06-21       Impact factor: 5.753

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