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Wheat Biotechnology

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Cover of 'Wheat Biotechnology'

Table of Contents

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    Book Overview
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    Chapter 1 Enabling Molecular Technologies for Trait Improvement in Wheat
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    Chapter 2 What Will Be the Benefits of Biotech Wheat for European Agriculture?
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    Chapter 3 Overview of the Wheat Genetic Transformation and Breeding Status in China
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    Chapter 4 Wheat Improvement in India: Present and Future
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    Chapter 5 Overview of Methods for Assessing Salinity and Drought Tolerance of Transgenic Wheat Lines
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    Chapter 6 Allergenicity Assessment of Transgenic Wheat Lines In Silico
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    Chapter 7 Agribusiness Perspectives on Transgenic Wheat
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    Chapter 8 Agrobacterium-Mediated Transformation of Wheat Using Immature Embryos
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    Chapter 9 Biolistic Transformation of Wheat
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    Chapter 10 Wheat Genetic Transformation Using Mature Embryos as Explants
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    Chapter 11 Targeted Mutagenesis in Hexaploid Bread Wheat Using the TALEN and CRISPR/Cas Systems
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    Chapter 12 Design and Assembly of CRISPR/Cas9 Reagents for Gene Knockout, Targeted Insertion, and Replacement in Wheat
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    Chapter 13 Doubled Haploid Transgenic Wheat Lines by Microspore Transformation
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    Chapter 14 Doubled Haploid Laboratory Protocol for Wheat Using Wheat–Maize Wide Hybridization
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    Chapter 15 Real-Time PCR for the Detection of Precise Transgene Copy Number in Wheat
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    Chapter 16 Endogenous Reference Genes and Their Quantitative Real-Time PCR Assays for Genetically Modified Bread Wheat (Triticum aestivum L.) Detection
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    Chapter 17 Phenotypic Characterization of Transgenic Wheat Lines Against Fungal Pathogens Puccinia triticina and Fusarium graminearum
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    Chapter 18 Databases for Wheat Genomics and Crop Improvement
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    Chapter 19 High-Density SNP Genotyping Array for Hexaploid Wheat and Its Relatives
Attention for Chapter 5: Overview of Methods for Assessing Salinity and Drought Tolerance of Transgenic Wheat Lines
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Chapter title
Overview of Methods for Assessing Salinity and Drought Tolerance of Transgenic Wheat Lines
Chapter number 5
Book title
Wheat Biotechnology
Published in
Methods in molecular biology, January 2017
DOI 10.1007/978-1-4939-7337-8_5
Pubmed ID
Book ISBNs
978-1-4939-7335-4, 978-1-4939-7337-8
Authors

Rohit Joshi, Khalid Anwar, Priyanka Das, Sneh L. Singla-Pareek, Ashwani Pareek

Abstract

Salinity and drought are interconnected, causing phenotypic, physiological, biochemical, and molecular changes in a cell. These stresses are the major factors adversely affecting growth and productivity in cereals. Genetic engineering methods have advanced to enable development of genotypes with improved salinity and drought tolerance. The resulting transgenic plant produces a group of progenies which includes moderate to high-stress tolerant transgenic lines. Development of reproducible screening methods to identify high-stress tolerant germplasm under laboratory, greenhouse, or field conditions is must. Further, field level demonstration of improved phenotypes and yield under salinity and drought stress conditions is both challenging and expensive. Fast and efficient screening techniques that could be used to screen transgenic lines under greenhouse conditions, for salt and drought stress tolerance, may contribute toward the identification of promising lines for field conditions. This chapter provides information on various approaches which can be developed during different stages of plant development for selecting salinity and drought tolerant plants in cereals, especially wheat.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 12 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 12 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 3 25%
Professor 2 17%
Student > Master 2 17%
Researcher 1 8%
Student > Postgraduate 1 8%
Other 0 0%
Unknown 3 25%
Readers by discipline Count As %
Agricultural and Biological Sciences 7 58%
Engineering 1 8%
Unknown 4 33%