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The Almond Tree Genome / edited by Raquel Sánchez-Pérez, Angel Fernandez i Marti, Pedro Martinez-Gomez

Material type: materialTypeLabelE-bookSeries: (Compendium of Plant Genomes, 2199-479X).Publisher: Cham : Springer International Publishing , 2023Edition: 1st ed. 2023.Description: 1 recurso en línea.ISBN: 9783030303020.Subject: FruticulturaOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
Almond genome analysis and breeding -- Labelling Almond Genome: SAM, QTLs and Association mapping -- Identification of natural variation in almond target genes -- Recent advances on almond bitterness expression at genomic and trascriptomic level -- Recent advances on flower self-incompatibility expression at genomic and transcriptomic level -- Molecular basis of abiotic and biotic stresses in almond -- Genomics for fruit quality traits in almond: QTLs vs Association mapping -- Transcriptional changes associated with flower bud dormancy in almond and other Prunus species: DNA sequence motifs, mRNA and miRNA expression, transcription factors, chromatin modifications and phytohormone signaling -- Almond transcriptome analysis using high-throughput sequencing technologies -- Almond miRNA expression and horticultural implications.
Summary: This book brings together the latest information on almond genomics and transcriptomics, with a particular focus on cutting-edge findings, tools, and strategies employed in genome sequencing and analysis with regard to the most important agronomic traits. Cultivated almond [(Prunus dulcis (Miller) D. A. Webb, syn. Prunus amygdalus Batsch., Amygdalus communis L., Amygdalus dulcis Mill.)] is a tree crop producing seeds of great economic interest, and adapted to hot and dry climates. Domesticated in Southeast Asia, its small diploid genome and phenotypic diversity make it an ideal model to complement genomics studies on peach, generally considered to be the reference Prunus species. Both represent consanguineous species that evolved in two distinct environments: warmer and more humid in the case of peach, and colder and xerophytic for almond. The advent of affordable whole-genome sequencing, in combination with existing Prunus functional genomics data, has now made it possible to leverage the novel diversity found in almond, providing an unmatched resource for the genetic improvement of this species.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias de la Salud SB354.8 2023 EB (Browse shelf(Opens below)) Acceso electrónico ebook29022254
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Almond genome analysis and breeding -- Labelling Almond Genome: SAM, QTLs and Association mapping -- Identification of natural variation in almond target genes -- Recent advances on almond bitterness expression at genomic and trascriptomic level -- Recent advances on flower self-incompatibility expression at genomic and transcriptomic level -- Molecular basis of abiotic and biotic stresses in almond -- Genomics for fruit quality traits in almond: QTLs vs Association mapping -- Transcriptional changes associated with flower bud dormancy in almond and other Prunus species: DNA sequence motifs, mRNA and miRNA expression, transcription factors, chromatin modifications and phytohormone signaling -- Almond transcriptome analysis using high-throughput sequencing technologies -- Almond miRNA expression and horticultural implications.

This book brings together the latest information on almond genomics and transcriptomics, with a particular focus on cutting-edge findings, tools, and strategies employed in genome sequencing and analysis with regard to the most important agronomic traits. Cultivated almond [(Prunus dulcis (Miller) D. A. Webb, syn. Prunus amygdalus Batsch., Amygdalus communis L., Amygdalus dulcis Mill.)] is a tree crop producing seeds of great economic interest, and adapted to hot and dry climates. Domesticated in Southeast Asia, its small diploid genome and phenotypic diversity make it an ideal model to complement genomics studies on peach, generally considered to be the reference Prunus species. Both represent consanguineous species that evolved in two distinct environments: warmer and more humid in the case of peach, and colder and xerophytic for almond. The advent of affordable whole-genome sequencing, in combination with existing Prunus functional genomics data, has now made it possible to leverage the novel diversity found in almond, providing an unmatched resource for the genetic improvement of this species.

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