PREFACE.- Dedication.- PART I: INTRODUCTION.- 1. Seed development: A comparative overview on biology of morphology, physiology, and biochemistry between monocot and dicot plants.- Introduction.- Seed development: key events.- Comparative morphology of seed development.- Comparative physiology: phytohormones, signaling, and metabolism.- Comparative biochemistry.- Dormancy and desiccation tolerance.- Concluding remarks.- 2. Proteomics reveals a potential role of the perisperm in starch remobilization during sugarbeet seed germination.- Introduction.- Experimental strategies.- Results and discussion.- Concluding remarks.- 3. Omics platforms: Importance of 21st century genome-enabled technologies in seed developmental research for improved seed quality and crop yield.- Introduction.- Biotechnologies role in improving seed quality and development.- Concluding remarks.- PART II: TRANSCRIPTOMICS.- 4. Rice seed development: A cornerstone for cereal crops.- Introduction.- Rice seed morphology, development, and germination.- Seed transcriptomics.- Comparative transcriptome evidence for monocot embryo organ homologies.- Concluding remarks.- 5. A transcriptional roadmap for seed development in maize.- Introduction.- A portrait of maize seed development.- Transcriptional regulation of maize seed development.- Concluding remarks.- 6. Using transcriptomics to reveal gene networks of seed development in Arabidopsis.- Introduction.- Analyzing the Arabidopsis seed transcriptome data.- Identifying gene networks.- Interactome.- Further analysis of candidate genes.- Advantages of using next-generation sequencing for transcriptome analysis.- Concluding remarks.- 7. The Medicago truncatula gene expression atlas (MtGEA): A tool for legume seed biology and biotechnology.- Introduction.- The Medicago truncatula gene expression atlas (MtGEA).- The MtGEA and seed development.- Concluding remarks.- 8. Transcriptomics of legume seed: Soybean a model grain legume.- Soybean seed development: an overview.- Transcriptomics of soybean seed: recent developments.- Soybean: a model grain legume for legume transcriptomics.- Concluding remarks.- 9. Peanut seed development: Molecular mechanisms of storage reserve mobilization and effect of water deficit stress on seed metabolism.- Introduction,- Stages of seed development.- Signaling networks and seed development.- Storage protein synthesis.- Fatty acid metabolism.- Starch metabolism Flavonoids in developing seeds.- Effects of water deficit stress on seed metabolism at molecular level.- Concluding remarks.- 10. Probing the genes expressed in developing seed of oilseed plants: Brassica napus (L.) as a case example.- Introduction.- Differential expression of genes during seed development.- Genes involved in lipid metabolism.- Biology of starch and sugar metabolism.- Storage protein accumulation in rapeseeds.- Carotenoid accumulation and gene expression Phenolics accumulation.- Regulatory and signalling genes related to seed development.- Concluding remarks.- 11. Networks of seed storage protein regulation networks in cereals and legumes at the dawn of the omics era.- Introduction.- Seed storage proteins.- Transcriptional regulation of SSPs.- Environmental regulation.- Future directions.- Concluding remarks.- PART III: PROTEOMICS.- 12. Organelle proteomics of developing seeds: Comparison with other plant tissue organelles.- Introduction.- Mitochondria: strategic roles in development and upon abiotic stresses.- Peroxisomes are key players in carbon metabolism (breakdown of storage lipids) during germination of oilseeds and seedling growth.- Plastids: photosynthetic carbon fixation, synthesis of amino- and fatty- acids, starch and secondary metabolites.- Endoplasmic reticulum: an inticulum endomembrane system for SSP processing, trafficking, and lipid biosynthesis.- Oil bodies: a reservoir of lipids as carbon and energy source.- Nuclei: site of gene expression and regulatory processes for seed development.- Concluding
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