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|a 867807915
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|a 572.862
|2 23
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|a Genomes of herbaceous land plants /
|c volume editor, Andrew Paterson.
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|a Amsterdam :
|b Academic Press,
|c 2014.
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|a 1 online resource.
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|a text
|b txt
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|a computer
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|2 rdamedia
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|a online resource
|b cr
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|a Advances in botanical research ;
|v v. 69
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|a CIP data; resource not viewed.
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|a Front Cover; Genomes of Herbaceous Land Plants; Copyright; Contents; Contributors; Chapter One: A Backdrop: Principles of Plant Genome Organization; 1. Background for this Volume; 2. Recurring Features of Plant Genomes; 2.1. Genome size variation; 2.2. Polyploidy; 2.3. Fundamental consequences of polyploidy; References; Chapter Two: Evolution of Plant Genome Analysis; 1. Introduction; 2. Evolution of the Term Genome; 3. Cytology and Cytogenetics; 4. Genome Size Determination; 5. Renaturation Kinetics; 6. Genetic Mapping; 7. Physical Mapping; Acknowledgements; References.
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|a Chapter Three: The Evolution of Plant Gene and Genome Sequencing1. The Early Period of Plant Gene Sequencing; 2. Random Sequencing of Expressed Genes for Discovery; 3. Evolution of DNA Sequencing Beyond Sanger Methodology; 4. The First Whole Plant Genome Sequences; 5. The Second Round of Whole Plant Genome Sequences; 6. Examples of the Many Recently Published Plant Genome Projects; 7. A Summary of the Trends; Acknowledgement; References; Chapter Four: The First Plant Genome Sequence-Arabidopsis thaliana; 1. Introduction; 2. Sequencing Strategy and Outcome; 2.1. Chromosome 2; 2.2. Chromosome 4.
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|a 2.3. Chromosome 12.4. Chromosome 3; 2.5. Chromosome 5; 2.6. Summary 2000; 2.7. The Arabidopsis gene set post-2000 and its comparison to those of other biota; 2.7.1. Functional annotation; 2.7.2. Arabidopsis gene families; 2.7.3. Discovering natural variation in Arabidopsis; 3. Evolutionary History; 3.1. Comparison of protein families; 4. Conclusions; References; Chapter Five: The First Monocot Genome Sequence: Oryza sativa (Rice); 1. Sequencing Strategies and Outcome; 2. The Rice Gene Set and its Comparison to Dicots (Arabidopsis); 3. Evolutionary History (Especially Genome Duplication)
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|a 2. Genome Sequencing Opens a New Era of Grass Research3. Gene Colinearity Contributes to Decipher Genome Structure; 3.1. Gene colinearity facilitates paleogenomic exploration; 3.2. Intragenomic gene colinearity; 3.3. Intergenomic gene colinearity; 4. An Ancestral Polyploidization Presides the Divergence of Major Cereals; 4.1. Genomic fractionation after the common polyploidization; 5. Large-Scale Genomic Repatterning Followed Whole-Genome Duplication; 6. Recombination Between Homoeologous Chromosomes; 7. Alignment of Multiple Genomes; 8. Inference of the Gene Composition of Ancestral Genomes.
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|a Advances in Botanical Research publishes in-depth and up-to-date reviews on a wide range of topics in plant sciences. Currently in its 69th volume, the series features several reviews by recognized experts on all aspects of plant genetics, biochemistry, cell biology, molecular biology, physiology and ecology. This thematic volume features reviews on genomes of herbaceous land plants<br><br><ul><li>Publishes in-depth and up-to-date reviews on a wide range of topics in plant sciences</li><li>Features a wide range of reviews by recognized experts on all aspects of plant genetics, biochemistry, ce.
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|a Plant genomes.
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|a Herbaceous plants.
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|a Plantes
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|a SCIENCE
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|x Biochemistry.
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650 |
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|a Herbaceous plants
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|a Plant genomes
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|a planten
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|a Genome informatics
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|a Genoominformatica
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700 |
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|a Paterson, Andrew H.,
|d 1960-
|e editor.
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830 |
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|a Advances in botanical research ;
|v v. 69.
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856 |
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|u https://sciencedirect.uam.elogim.com/science/book/9780124171633
|z Texto completo
|