Rice genomics, genetics and breeding / Takuji Sasaki, Motoyuki Ashikari, editors.

This book presents the latest advances in rice genomics, genetics and breeding, with a special focus on their importance for rice biology and how they are breathing new life into traditional genetics. Rice is the main staple food for more than half of the world’s population. Accordingly, sustainable...

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Bibliographic Details
Online Access: Full Text (via Springer)
Other Authors: Sasaki, Takuji (Editor), Ashikari, Motoyuki (Editor)
Format: eBook
Language:English
Published: Singapore : Springer, 2018.
Subjects:

MARC

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245 0 0 |a Rice genomics, genetics and breeding /  |c Takuji Sasaki, Motoyuki Ashikari, editors. 
264 1 |a Singapore :  |b Springer,  |c 2018. 
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500 |a Includes index. 
505 0 |a Intro; Preface; Contents; Chapter 1: Genome Sequences of Oryza Species; 1.1 Introductory Overview of Rice Genome Sequencing; 1.2 Rice Genome Sequencing Projects and the Release of the IRGSP Reference Genome; 1.3 Genome Annotations and the Release of the Revised Genome Assembly, IRGSP-1.0; 1.4 De Novo Assembly of the indica Genome via NGS; 1.5 O. sativa Genome Resequencing Project; 1.6 Domestication History of O. sativa and Contribution of Genomic Studies; 1.7 Sequencing of O. glaberrima, African Cultivated Rice; 1.8 Wild Oryza Species. 
505 8 |a 1.9 The International Collaborative for Wild Oryza Species Genome Sequencing1.10 Distantly Related Wild Oryza Species; 1.11 Sequencing of O. punctata (BB) Genome; 1.12 Sequencing of O. officinalis (CC) Genome; 1.13 Sequencing of O. brachyantha, the Smallest Oryza Genome; 1.14 Perspectives; References; Chapter 2: Small RNAs in Rice: Molecular Species and Their Functions; 2.1 Introduction; 2.2 Protein Components of Small RNA Pathways in Rice; 2.3 miRNA Gene Annotations in Rice; 2.4 Small RNAs and Abiotic Stress Responses in Rice; 2.5 Small RNAs and Immune Response in Rice. 
505 8 |a 2.5.1 Small RNAs in Rice-Bacterium Interactions2.5.2 Small RNAs Involved in Rice Immunity Against Blast Fungus; 2.5.3 Small RNAs in Rice-Virus Interactions; 2.5.4 Application of miRNA-Based Strategies to Produce Disease-Resistant Rice; 2.6 Rice Small RNAs and Crop Production; 2.7 Conclusion; References; Chapter 3: Composition and Structure of Rice Centromeres and Telomeres; 3.1 Introduction; 3.2 Rice Centromere; 3.2.1 Genetically and Physically Mapped Centromere; 3.2.2 Composition and Structure of Centromere; 3.2.3 Functional Domains of Centromere; 3.2.4 Centromere Evolution. 
505 8 |a 3.3 Rice Telomere3.3.1 Composition and Organization of Telomere Sequences; 3.3.2 Sequence Variants of Telomere Satellite Repeat; 3.3.3 Variation of Telomere Length; 3.3.4 Subtelomere; 3.4 Conclusions; References; Chapter 4: Rice Organelle Genomics: Approaches to Genetic Engineering and Breeding; 4.1 Mitochondrial Genomics in Rice; 4.1.1 Rice Mitochondrial Genome Sequencing; 4.1.2 Gene Contents and Genes Associated with Cytoplasmic Male Sterility; 4.1.3 Mitochondrial DNA Fragments in the Nuclear Genome; 4.2 Chloroplast Genomics in Rice. 
505 8 |a 4.2.1 Use of Rice Chloroplast Genomes for Comparative Genomics4.2.2 Perspectives on Rice Chloroplast Genome Engineering; References; Chapter 5: Genetic and Epigenetic Regulation of Meiotic Fate Decision and Gametophyte Specification in Rice; 5.1 Introduction; 5.2 Sexual Organogenesis; 5.3 Germline Initiation and Meiotic Cell Fate Decision; 5.4 Meiosis-Specific Chromosomal Behavior; 5.5 Synaptonemal Complex Components; 5.6 Meiotic Recombination; 5.7 Epigenetics in Meiotic DSB Initiation; 5.8 Cell-Cell Communication in Meiosis and Postmeiosis; 5.9 Tapetal PCD. 
520 |a This book presents the latest advances in rice genomics, genetics and breeding, with a special focus on their importance for rice biology and how they are breathing new life into traditional genetics. Rice is the main staple food for more than half of the world’s population. Accordingly, sustainable rice production is a crucial issue, particularly in Asia and Africa, where the population continues to grow at an alarming rate. The book’s respective chapters offer new and timely perspectives on the synergistic effects of genomics and genetics in novel rice breeding approaches, which can help address the urgent issue of providing enough food for a global population that is expected to reach 9 billion by 2050. 
588 0 |a Online resource; title from PDF title page (SpringerLink, viewed February 19, 2018) 
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700 1 |a Ashikari, Motoyuki,  |e editor. 
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