A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection

Sweet basil (Ocimum basilicum) is an economically important herb crop. Its production has been severely threatened by the downy mildew disease caused by the obligate biotrophic oomycete Peronospora belbahrii. Deployment of disease resistant cultivars would be the most cost effective, environmentally...

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Main Authors: Dandan Shao, Miaoying Tian
Format: Article
Language:English
Published: Elsevier 2018-11-01
Series:Current Plant Biology
Online Access:http://www.sciencedirect.com/science/article/pii/S2214662818301154
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spelling doaj-6190360448004b5982ba8a29eaac1b1f2020-11-25T00:26:07ZengElsevierCurrent Plant Biology2214-66282018-11-011527A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infectionDandan Shao0Miaoying Tian1Department of Plant and Environmental Protection Sciences, University of Hawaii at Manoa, Honolulu, HI, 96822, United StatesCorresponding author.; Department of Plant and Environmental Protection Sciences, University of Hawaii at Manoa, Honolulu, HI, 96822, United StatesSweet basil (Ocimum basilicum) is an economically important herb crop. Its production has been severely threatened by the downy mildew disease caused by the obligate biotrophic oomycete Peronospora belbahrii. Deployment of disease resistant cultivars would be the most cost effective, environmentally friendly control strategy. However, transferring resistance found only in wild Ocimum species to sweet basil via traditional breeding has been extremely challenging. To apply cutting-edge biotechnological approaches to breeding for basil downy mildew resistance, it is essential to better understand the molecular basis of basil-P. belbahrii interactions, for which a set of experimental tools, including a sensitive disease assessment method, are required. Here we described a quantitative PCR (qPCR) approach to quantify P. belbahrri growth during infection. The approach utilizes two pairs of primers that specifically and effectively amplify the internal transcribed spacer 2 (ITS2) region of P. belbahrii and basil β-tubulin gene for pathogen detection, and normalization of pathogen DNA relative to plant biomass, respectively. This approach was shown to be able to detect increased pathogen growth during infection time course and differentiate disease levels of different sweet basil cultivars at an early infection stage. This qPCR approach is expected to facilitate the dissection of the molecular basis of basil-P. belbahrii interactions and it can also be used for pathogen detection in propagating materials to ensure the growth of disease-free materials and prevent disease spread. Keywords: Basil downy mildew, Peronospora belbahrii, Ocimum basilicum, Pathogen quantification, qPCRhttp://www.sciencedirect.com/science/article/pii/S2214662818301154
collection DOAJ
language English
format Article
sources DOAJ
author Dandan Shao
Miaoying Tian
spellingShingle Dandan Shao
Miaoying Tian
A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
Current Plant Biology
author_facet Dandan Shao
Miaoying Tian
author_sort Dandan Shao
title A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
title_short A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
title_full A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
title_fullStr A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
title_full_unstemmed A qPCR approach to quantify the growth of basil downy mildew pathogen Peronospora belbahrii during infection
title_sort qpcr approach to quantify the growth of basil downy mildew pathogen peronospora belbahrii during infection
publisher Elsevier
series Current Plant Biology
issn 2214-6628
publishDate 2018-11-01
description Sweet basil (Ocimum basilicum) is an economically important herb crop. Its production has been severely threatened by the downy mildew disease caused by the obligate biotrophic oomycete Peronospora belbahrii. Deployment of disease resistant cultivars would be the most cost effective, environmentally friendly control strategy. However, transferring resistance found only in wild Ocimum species to sweet basil via traditional breeding has been extremely challenging. To apply cutting-edge biotechnological approaches to breeding for basil downy mildew resistance, it is essential to better understand the molecular basis of basil-P. belbahrii interactions, for which a set of experimental tools, including a sensitive disease assessment method, are required. Here we described a quantitative PCR (qPCR) approach to quantify P. belbahrri growth during infection. The approach utilizes two pairs of primers that specifically and effectively amplify the internal transcribed spacer 2 (ITS2) region of P. belbahrii and basil β-tubulin gene for pathogen detection, and normalization of pathogen DNA relative to plant biomass, respectively. This approach was shown to be able to detect increased pathogen growth during infection time course and differentiate disease levels of different sweet basil cultivars at an early infection stage. This qPCR approach is expected to facilitate the dissection of the molecular basis of basil-P. belbahrii interactions and it can also be used for pathogen detection in propagating materials to ensure the growth of disease-free materials and prevent disease spread. Keywords: Basil downy mildew, Peronospora belbahrii, Ocimum basilicum, Pathogen quantification, qPCR
url http://www.sciencedirect.com/science/article/pii/S2214662818301154
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