Seed development, dormancy and germination:
"The formation, dispersal and germination of seeds are crucial stages in the life cycles of gymnosperm and angiosperm plants. The unique properties of seeds, particularly their tolerance to desiccation, their mobility, and their ability to schedule their germination to coincide with times when...
Gespeichert in:
Format: | Buch |
---|---|
Sprache: | English |
Veröffentlicht: |
Oxford [u.a.]
Blackwell Publ.
2007
|
Schriftenreihe: | Annual plant reviews
27 |
Schlagworte: | |
Online-Zugang: | Table of contents only Inhaltsverzeichnis |
Zusammenfassung: | "The formation, dispersal and germination of seeds are crucial stages in the life cycles of gymnosperm and angiosperm plants. The unique properties of seeds, particularly their tolerance to desiccation, their mobility, and their ability to schedule their germination to coincide with times when environmental conditions are favorable to their survival as seedlings, have no doubt contributed significantly to the success of seed-bearing plants. Humans are also dependent upon seeds, which constitute the majority of the world's staple foods (e.g., cereals and legumes). Seeds are an excellent system for studying fundamental developmental processes in plant biology, as they develop from a single fertilized zygote into an embryo and endosperm, in association with the surrounding maternal tissues. As genetic and molecular approaches have become increasingly powerful tools for biological research, seeds have become an attractive system in which to study a wide array of metabolic processes and regulatory systems. Seed Development, Dormancy and Germination provides a comprehensive overview of seed biology from the point of view of the developmental and regulatory processes that are involved in the transition from a developing seed through dormancy and into germination and seedling growth. It examines the complexity of the environmental, physiological, molecular and genetic interactions that occur through the life cycle of seeds, along with the concepts and approaches used to analyze seed dormancy and germination behavior. It also identifies the current challenges and remaining questions for future research. The book is directed at plant developmental biologists, geneticists, plant breeders, seed biologists and graduate students." --NHBS Environment Bookstore. |
Beschreibung: | Includes bibliographical references and index |
Beschreibung: | XVII, 367 S. Ill., graph. Darst., Tab. |
ISBN: | 1405139838 9781405139830 |
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520 | 3 | |a "The formation, dispersal and germination of seeds are crucial stages in the life cycles of gymnosperm and angiosperm plants. The unique properties of seeds, particularly their tolerance to desiccation, their mobility, and their ability to schedule their germination to coincide with times when environmental conditions are favorable to their survival as seedlings, have no doubt contributed significantly to the success of seed-bearing plants. Humans are also dependent upon seeds, which constitute the majority of the world's staple foods (e.g., cereals and legumes). Seeds are an excellent system for studying fundamental developmental processes in plant biology, as they develop from a single fertilized zygote into an embryo and endosperm, in association with the surrounding maternal tissues. As genetic and molecular approaches have become increasingly powerful tools for biological research, seeds have become an attractive system in which to study a wide array of metabolic processes and regulatory systems. Seed Development, Dormancy and Germination provides a comprehensive overview of seed biology from the point of view of the developmental and regulatory processes that are involved in the transition from a developing seed through dormancy and into germination and seedling growth. It examines the complexity of the environmental, physiological, molecular and genetic interactions that occur through the life cycle of seeds, along with the concepts and approaches used to analyze seed dormancy and germination behavior. It also identifies the current challenges and remaining questions for future research. The book is directed at plant developmental biologists, geneticists, plant breeders, seed biologists and graduate students." --NHBS Environment Bookstore. | |
650 | 4 | |a Germination | |
650 | 4 | |a Semences - Dormance | |
650 | 4 | |a Semences - Développement | |
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650 | 4 | |a Seeds |x Dormancy | |
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Datensatz im Suchindex
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adam_text | LIST OF CONTRIBUTORS PREFACE 1 GENETIC CONTROL OF SEED DEVELOPMENT AND
SEED MASS MASA-AKI OHTO, SANDRA L. STONE AND JOHN J. HARADA 1.1
INTRODUCTION 1.2 OVERVIEW OF SEED DEVELOPMENT IN ANGIOSPE R MS 1.3
GENETIC CONTROL OF EMBRYO DEVELOPMENT 1.3.1 CENTRAL REGULATORS OF
EMBRYOGENESIS 1.3.2 GENES INVOLVED IN THE MORPHOGENESIS PHASE OF EMBRYO
DEVELOPMENT 1.3.3 REGULATORS OF THE MATURATION PHASE OF EMBRYO
DEVELOPMENT 1.4 GENETIC ENDOSPE RM DEVELOPMENT 1.4.1 GENES REQUIRED FOR
CEREAL ENDOSPERM DEVELOPMENT 1.4.2 GENES THAT REPRESS AUTONOMOUS
ENDOSPERM DEVELOPMENT 1.5 GENETIC ASPECTS OF TESTA DEVELOPMENT 1.5.1
GENETIC REGULATION OF FLAVONOID BIOSYNTHESIS AND ACCUMULATION 1.5.2
REGULATORS OF MUCILAGE BIOSYNTHESIS AND ACCUMULATION 1.6 CONTROL OF SEED
MASS 1.6.1 GENETIC FACTORS AFFECTING SEED MASS 1.6.2 TESTA DEVELOPMENT
AND SEED MASS 1.6.3 ENDOSPERM DEVELOPMENT AND SEED MASS 1.6.4 SUGAR
TRANSPORT AND METABOLISM DURING SEED DEVELOPMENT 1.6.5 METABOLIC CONTROL
OF SEED DEVELOPMENT AND SIZE 1.7 PERSPECTIVE REFERENCES 2 SEED COAT
DEVELOPMENT AND DORMANCY IS ABELLE DEBEAUJON, LOIC LEPINIEC, LUCILLE
POURCEL AND JEAN-MARC ROUTABOUL 2.1 INTRODUCTION 2.2 DEVELOPMENT AND
ANATOMY OF THE SEED COAT 2.2.1 THE SEED ENVELOPES 2.2.2 THE ARABIDOPSIS
TESTA XIII XV 1 VI CONTENTS 2.3 ROLE OF THE SEED COAT IN SEED DORMANCY
AND GERMINATION 2.3.1 CONSTRAINTS I M POSED BY THE SEED COAT 2.3.2
FLAVONOIDS IN ARABIDOPSIS SEEDS 2.3.2.1 MAIN FLAVONOID END-PRODUCTS
PRESENT IN SEEDS 2.3.2.2 MOLECULAR GENETICS OF FLAVONOID METABOLISM
2.3.2.3 EFFECTS OF FLAVONOIDS ON SEED DORMANCY AND GERMINATION 2.3.3
FLAVONOIDS IN SEED DORMANCY AND GERMINATION OF VARIOUS SPECIES 2.3.3.1
SOLANACEAE 2.3.3.2 WATER PERMEABILITY OF TESTAE IN LEGUMINOSAE AND OTHER
SPECIES 2.3.3.3 FLAVONOIDS AND OTHER PHENOLICS AS DIRECT AND INDIRECT
GERMINATION INHIBITORS 2.3.3.4 PRE-HARVEST SPROUTING (PHS) IN CEREALS
2.3.3.5 HETEROMORPHISM AND PHYSIOLOGICAL HETEROGENEITY AMONG SEEDS
2.3.3.6 INTERACTIONS WITH ENDOSPERM 2.4 LINK BETWEEN SEED COAT-IMPOSED
DORMANCY AND LONGEVITY 2.5 CONCLUDING REMARKS REFERENCES 3 DEFINITIONS
AND HYPOTHESES OF SEED DORMANCY HENK W.M. HILHORST 3.1 INTRODUCTION 3.2
CLASSIFICATIONS OF DORMANCY 3.2.1 ENDOGENOUS DORMANCY 3.2.2 EXOGENOUS
DORMANCY 3.3 DEFINITIONS OF DORMANCY 3.4 F RIMARY DORMANCY 3.4.1
INDUCTION OF PRIMARY DORMANCY 3.4.1.1 ROLE OF ABA IN DORMANCY INDUCTION
3.4.1.2 DEVELOPMENTAL PROGRAMS AND DORMANCY INDUCTION 3.4.2 RELEASE OF
PRIMARY DORMANCY 3.4.2.1 AFTER-NPENING 3.4.2.2 REGULATION OF DORMANCY IN
IMBIBED SEEDS 3.5 SECONDARY DORMANCY 3.6 SIGNALING IN DORMANCY 3.6.1
STRESS SIGNA LI NG 3.6.2 SIGNALING NETWORKS 3.6.3 ENVIRONMENTAL SI GNALS
3.7 CHALLENGES FOR THE FUTURE REFERENCES CONTENTS 4 MODELING OF SEED
DORMANCY PHIL S. ALLEN, ROBERTO L. BENECH-ARNOLD, DIEGO BATLLA AND KENT
J. BRADFORD 4.1 INTRODUCTION 4.2 TYPES AND PHENOLOGY OF SEED DORMANCY
4.3 ENVIRONMENTAL CONTROL OF DORMANCY 4.3.1 FACTORS AFFECTING DORMANCY
LEVELS OF SEED POPULATIONS 4.3.1.1 TEMPERATURE 4.3.1.2 AFTER-RIPENING
4.3.1.3 STRATIFICATION 4.3.2 FACTORS THAT STIMULATE GERMINATION 4.3.2.1
FL UCTUATING TEMPERATURE 4.3.2.2 LIGHT 4.3.2.3 NITRATE 4.3.3 CONCEPTUAL
SCHEME OF DORMANCY AND ITS RELATIONSHIP TO MODELING 4.4 APPROACHES TO
MODELING SEED DORMANCY 4.4.1 TEMPERATURE RESPONSE MODELS AND THERMAL
TIME 4.4.2 WATER POTENTIAL RESPONSES AND HYDROTIME MODELS 4.4.3
INTERACTIONS OF TEMPERATURE AND WATER POTENTIAL 4.4.4 MODELING RESPONSES
TO OTHER FACTORS AFFECTING DORMANCY AND GERMINATION 4.5 EXAMPLES OF SEED
DORMANCY MODELS 4.5.1 SOLANUM TUBEROSUM 4.5.2 BROMUS TECTORUM 4.5.3
POLYGONUM AVICULARE 4.5.3.1 MODELING SEED GERMINATION RESPONSES TO
TEMPERATURE 4.5.3.2 MODELING SEED RESPONSES TO GERMINATION-STIMULATING
FACTORS 4.6 POPULATION-BASED THRESHOLD MODELS OF SEED DORMANCY 4.7
CONCLUSIONS AND FUTURE DIRECTIONS REFERENCES 5 GENETIC ASPECTS OF SEED
DORMANCY LEONIE BENTSINK, WIM SOPPE AND MAARTEN KOORNNEEF 5.1
INTRODUCTION 5.2 MUTANT APPROACHES IN ARABIDOPSIS 5.3 MUTANT APPROACHES
IN OTHER SPECIES 5.4 GENETIC ANALYSES OF NATURAL VARIATION 5.4.1 GENETIC
ANALYSIS OF NATURAL VARIATION IN ARABIDOPSIS 5.4.2 NATURAL VARIATION FOR
DORMANCY IN GRASSES 5.5 WHAT DO THE GENETICS TEACH US ABOUT DORMANCY AND
GERMINATION? REFERENCES VIII CONTENTS 6 LIPID METABOLISM IN SEED
DORMANCY STEVEN PENFIELD, HELEN PINFIELD-WELLS AND IAN A. GRAHAM 6.1
INTRODUCTION 6.2 METABOLIC PATHWAYS FOR TAG BREAKDOWN AND CONVERSION TO
SUCROSE 6.2.1 TAG HYDROLYSIS AND ACTIVATION 6.2.2 IMPORT OF FATTY ACIDS
INTO THE PEROXISOME 6.2.3 ACTIVATION OF FATTY ACIDS TO ACYL-COA
THIOESTERS FOR SS-OXIDATION 6.2.4 SS-OXIDATION 6.2.4.1 ACYL-COA OXIDASES
6.2.4.2 MULTIFUNCTIONAL PROTEIN 6.2.4.3 3-L-KETOACYL-COA THIOLASE
6.2.4.4 PEROXISOMAL CITRATE SYNTHASE 6.2.5 GLYOXYLATE CYCLE AND
GLUCONEOGENESIS 6.2.5.1 ISOCITRATE LYASE 6.2.5.2 MALATE SYNTHASE 6.2.5.3
PHOSPHOENOLPYRUVATE CARBOXYLASE 6.3 LIPID METABOLISM AND SEED DORMANCY
6.3.1 IMPORTANCE OF THE ABC TRANSPORTER FOR THE TRANSITION FROM DORMANCY
TO GERMINATION 6.3.2 DEFECTS IN SS-OXIDATION ENZYMES, BUT NOT IN LACS,
AFFECT SEED DORMANCY 6.3.3 STORAGE LIPID MOBILIZATION (GLYOXYLATE CYCLE
AND GLUCONEOGENESIS) IS NOT REQUIRED FOR SEED DORMANCY RELEASE 6.4
MECHANISMS FOR THE INVOLVEMENT OF SS-OXIDATION IN DORMANCY RELEASE 6.4.1
SS-OXIDATION DOES NOT FUEL SEED GERMINATION 6.4.2 SS-OXIDATION AND
HORMONAL SIGNALING 6.4.3 POSSIBLE BIOSYNTHETIC ROLES FOR SS-OXIDATION IN
REGULATING GERMINATION 6.4.4 SS-OXIDATION, REACTIVE OXYGEN SPECIES, AND
REDOX CONTROL 6.5 CONCLUSIONS REFERENCES 7 NITRIC OXIDE IN SEED DORMANCY
AND GERMINATION PAUL C. BETHKE, IGOR G.L. LIBOUREL AND RUSSELL L. JONES
7.1 NITRIC OXIDE IN PLANT GROWTH AND DEVELOPMENT 7.2 CHALLENGES IN NO
CHEMISTRY AND BIOLOGY 7.3 TOOLS USED IN NO RESEARCH 7.4 ROLES OF NO AND
OTHER N-CONTAINING CORNPOUNDS IN SEED DORMANCY AND GERMINATION CONTENTS
7.4.1 NITRATE, NITRITE, AND AMMONIUM 7.4.2 CYANIDE AND AZIDE 7.4.3 NO
DONORS AND GERMINATION 7.4.4 NO SCAVENGERS AND GERMINATION 7.5
BIOCHEMICAL AND MOLECULAR BASIS OF NO ACTION IN SEEDS 7.5.1 SYNTHESIS OF
NO BY PLANTS 7.5.2 NO BINDING TO METAL-CONTAINING PROTEINS 7.5.3 NO AS
AN ANTIOXIDANT 7.6 INTERACTIONS BETWEEN NO AND PHYTOCHROME OR ABA 7.7
ECOLOGICAL SIGNIFICANCE OF NO 7.7.1 NITROGEN AND VEGETATION GAP SENSING
7.7.2 SMOKE AND NO 7.8 UNRESOLVED QUESTIONS AND CONCLUDING REMARKS
REFERENCES 8 A MERGING OF PATHS: ABSCISIC ACID AND HORMONAL CROSS-TALK
IN THE CONTROL OF SEED DORMANCY MAINTENANCE AND ALLEVIATION J. ALLAN
EEURTADO AND ALLZSON R. KERMODE 8.1 INTRODUCTION 8.2 ABSCISIC ACID 8.2.1
ABA IN SEED MATURATION AND THE INDUCTION OF PRIMARY DORMANCY 8.2.2
TRANSCRIPTION FACTORS AND COMBINATORIAL CONTROL OF SEED DEVELOPMENT AND
MATURATION 8.2.3 ABA IN DORMANCY MAINTENANCE AND TERMINATION 8.2.3.1 ABA
SYNTHESIS AND HOMEOSTASIS DURING DORMANCY MAINTENANCE AND TERMINATION
8.2.3.2 ABA SIGNALING FACTORS AND THE CONTROL OF DORMANCY MAINTENANCE
AND TERMINATION 8.3 GIBBERELLIN 8.3.1 GA IS ANTAGONISTIC TO ABA DURING
SEED DEVELOPMENT 8.3.2 GA PROMOTES THE TRANSITION TO GERMINATION 8.4
LIGHT INTERACTIONS 8.4.1 GA SYNTHESIS AND SIGNALING ARE PROMOTED BY
LIGHT THROUGH THE ACTION OF PHYTOCHROME 8.4.2 ABA-ASSOCIATED SIGNALING
PROCESSES ARE OPPOSED BY LIGHT SIGNALING 8.5 ETHYLENE 8.5.1 ETHYLENE
COUNTERACTS ABA DURING SEED DEVELOPMENT 8.5.2 ETHYLENE PROMOTES THE
TRANSITION FROM DORMANCY TO GERMINATION 8.6 AUXIN AND CYTOKININ 8.6.1
AUXIN AND CYTOKININ ESTABLISH THE EMBRYO BODY PLAN DURING SEED
DEVELOPMENT X CONTENTS 8.6.2 AUXIN AND CYTOKININS HAVE NOT BEEN
INTIMATELY LINKED TO DORMANCY MAINTENANCE OR TERMINATION 8.7
BRASSINOSTEROIDS 8.8 G-PROTEIN SIGNALING REVEALS INTEGRATION OF GA, BR,
ABA, AND SUGAR RESPONSES 8.9 PROFILING OF HORMONE METABOLIC PATHWAYS IN
ARABIDOPSIS MUTANTS REVEALS CROSS-TALK 8.10 SUMMARY AND FUTURE
DIRECTIONS REFERENCES 9 REGULATION OF ABA AND GA LEVELS DURING SEED
DEVELOPMENT AND GERMINATION IN ARABIDOPSIS SHINJIRO YAMAGUCHI, YUJI
KAMIYA AND EIJI NAMBARA 9.1 INTRODUCTION 9.2 BIOSYNTHETIC AND
DEACTIVATION PATHWAYS OF ABA AND GA 9.2.1 ABA BIOSYNTHESIS 9.2.2 ABA
DEACTIVATION 9.2.3 ABA-DEFICIENT MUTANTS AND SEED GERMINATION 9.2.4 GA
BIOSYNTHESIS 9.2.5 GA DEACTIVATION 9.2.6 GA-DEFICIENT MUTANTS AND SEED
GERMINATION 9.3 INHIBITORS OF ABA AND GA METABOLISM: EFFICACY AND SIDE
EFFECTS OF DRUGS 9.3.1 DRUGS TO REDUCE ENDOGENOUS ABA LEVELS 9.3.2 DRUGS
TO INCREASE ENDOGENOUS ABA LEVELS 9.3.3 DRUGS TO REDUCE GA LEVELS 9.3.4
SIDE EFFECTS OF DMGS 9.4 REGULATION OF ABA AND GA LEVELS IN ARABIDOPSIS
SEEDS 9.4.1 REGULATION OF ABA AND GA LEVELS DURING SEED DEVELOPMENT
9.4.1.1 ROLES OF ABA AND GA DURING SEED DEVELOPMENT 9.4.1.2 FUS3, A
BALANCER OF ABA AND GA LEVELS 9.4.1.3 AGL15, A TRANSCRIPTIONAL REGULATOR
OF A GA DEACTIVATION GENE 9.4.2 REGULATION OF ABA METABOLISM DURING SEED
IMBIBITION IN ARABIDOPSIS 9.4.3 REGULATION OF GA METABOLISM DURING SEED
IMBIBITION IN ARABIDOPSIS 9.4.3.1 REGULATION OF GA BIOSYNTHESIS BY LIGHT
9.4.3.2 REGULATION OF GA BIOSYNTHESIS BY COLD TEMPERATURE 9.5
CONCLUSIONS AND PERSPECTIVES REFERENCES 10 DE-REPRESSION O CAMILLE M.
STEBER 10.1 INTRODUCTION 10.2 CONTROL OF GERMINATION BY GA SIGNALING
10.3 THE ROLE OF THE UBIQUITIN-PROTEASOME PATHWAY IN GA SIGNALING 10.4
1S RGL2 A MASTER REGULATOR OF SEED GERMINATION? 10.5 SLEEPYL IS A
POSITIVE REGULATOR OF SEED GERMINATION IN ARABIDOPSIS 10.6 DO DELLA
PROTEINS HAVE A CONSERVED ROLE IN SEED GERMINATION? 10.7 FUTURE
DIRECTIONS REFERENCES 11 MECHANISMS AND GENES INVOLVED IN GERMINATION
SENSU STRICTO HIROYUKI NONOGAKI, FENG CHEN AND KENT J. BRADFORD 11.1
INTRODUCTION 11.2 IMBIBITION AND WATER RELATIONS OF SEED GERMINATION
11.3 TESTA/ENDOSPERM RESTRAINT AND EMBRYO GROWTH POTENTIAL 1 1.3.1 TESTA
AND PERICARP 1 1.3.2 ENDOSPERM 11.3.3 CE11 WALL PROTEINS AND HYDROLASES
INVOLVED IN WEAKENING OF COVERING TISSUES 11.3.3.1 EXPANSINS 1 1.3.3.2
XYLOGLUCAN ENDOTRANSGLYCOSYLASE/ HYDROLASES 1 1.3.3.3 ENDO- B-MANNANASE,
A-GALACTOSIDASE, AND SS -MANNOSIDASE 1 1.3.3.4 CELLULASE, ARABINOSIDASE,
XYLOSIDASE 11.3.3.5 POLYGALACTURONASE AND PECTIN METHYLESTERASE 11.3.3.6
SS-1,3-GLUCANASE AND CHITINASE 11.3.3.7 CONCERTED ACTION OF CELL WALL
HYDROLASES AND EXPANSINS 11.3.4 EMBRYO GROWTH POTENTIAL 11.3.4.1
GENERATION OF EMBRYO GROWTH POTENTIAL 11.3.4.2 GENE EXPRESSION
ASSOCIATED WITH EMBRYO GROWTH 1 1.4 APPROACHES TO IDENTIFY ADDITIONAL
GENES INVOLVED IN GERMINATION 1 1.4.1 TRANSCRIPTOME AND PROTEOME
ANALYSES 11.4.2 ACTIVATION TAGGING AND ENHANCER TRAPPING 11.4.3
POTENTIAL INVOLVEMENT OF MICRORNAS IN SEED GERMINATION REFERENCES
CONTENTS TO SEEDLING GROWTH BAS J.W. DEKKERS AND SJEF C.M. SMEEKENS 12.1
INTRODUCTION 12.2 ABA SIGNALING DURING GE R MINATION AND EARLY SEEDLING
GROWTH 12.2.1 ABA RESPONSE MUTANTS ISOLATED IN GERMINATION-BASED SCREENS
12.2.2 ABA INHIBITION OF SEED GERMINATION IS SUPPRESSED BY S UGARS
12.2.3 ABA BLOCKS THE TRANSITION FRORN EMBRYONIC TO VEGETATIVE GROWTH
12.3 SUGAR SIGNALING REPRESSES GERMINATION AND THE TRANSITION TO
VEGETATIVE GROWTH 12.3.1 PLANT SUGAR SIGNALING AND THE IDENTIFICATION OF
SUGAR-RESPONSE MUTANTS 12.3.2 THE GLUCOSE-INSENSITIVE RESPONSE PATHWAY
12.3.3 OTHER FACTORS AFFECTING THE GLUCOSE RESPONSE DURING EARLY
SEEDLING DEVELOPMENT 12.3.4 SUGAR DELAYS SEED GERMINATION IN ARABIDOPSIS
12.3.5 IMBIBED SEEDS RAPIDLY LOSE SENSITIVITY FOR THE GLUCOSE-INDUCED
GERMINATION DELAY 12.4 CONCLUSIONS REFERENCES
|
adam_txt |
LIST OF CONTRIBUTORS PREFACE 1 GENETIC CONTROL OF SEED DEVELOPMENT AND
SEED MASS MASA-AKI OHTO, SANDRA L. STONE AND JOHN J. HARADA 1.1
INTRODUCTION 1.2 OVERVIEW OF SEED DEVELOPMENT IN ANGIOSPE R MS 1.3
GENETIC CONTROL OF EMBRYO DEVELOPMENT 1.3.1 CENTRAL REGULATORS OF
EMBRYOGENESIS 1.3.2 GENES INVOLVED IN THE MORPHOGENESIS PHASE OF EMBRYO
DEVELOPMENT 1.3.3 REGULATORS OF THE MATURATION PHASE OF EMBRYO
DEVELOPMENT 1.4 GENETIC ENDOSPE RM DEVELOPMENT 1.4.1 GENES REQUIRED FOR
CEREAL ENDOSPERM DEVELOPMENT 1.4.2 GENES THAT REPRESS AUTONOMOUS
ENDOSPERM DEVELOPMENT 1.5 GENETIC ASPECTS OF TESTA DEVELOPMENT 1.5.1
GENETIC REGULATION OF FLAVONOID BIOSYNTHESIS AND ACCUMULATION 1.5.2
REGULATORS OF MUCILAGE BIOSYNTHESIS AND ACCUMULATION 1.6 CONTROL OF SEED
MASS 1.6.1 GENETIC FACTORS AFFECTING SEED MASS 1.6.2 TESTA DEVELOPMENT
AND SEED MASS 1.6.3 ENDOSPERM DEVELOPMENT AND SEED MASS 1.6.4 SUGAR
TRANSPORT AND METABOLISM DURING SEED DEVELOPMENT 1.6.5 METABOLIC CONTROL
OF SEED DEVELOPMENT AND SIZE 1.7 PERSPECTIVE REFERENCES 2 SEED COAT
DEVELOPMENT AND DORMANCY IS ABELLE DEBEAUJON, LOIC LEPINIEC, LUCILLE
POURCEL AND JEAN-MARC ROUTABOUL 2.1 INTRODUCTION 2.2 DEVELOPMENT AND
ANATOMY OF THE SEED COAT 2.2.1 THE SEED ENVELOPES 2.2.2 THE ARABIDOPSIS
TESTA XIII XV 1 VI CONTENTS 2.3 ROLE OF THE SEED COAT IN SEED DORMANCY
AND GERMINATION 2.3.1 CONSTRAINTS I M POSED BY THE SEED COAT 2.3.2
FLAVONOIDS IN ARABIDOPSIS SEEDS 2.3.2.1 MAIN FLAVONOID END-PRODUCTS
PRESENT IN SEEDS 2.3.2.2 MOLECULAR GENETICS OF FLAVONOID METABOLISM
2.3.2.3 EFFECTS OF FLAVONOIDS ON SEED DORMANCY AND GERMINATION 2.3.3
FLAVONOIDS IN SEED DORMANCY AND GERMINATION OF VARIOUS SPECIES 2.3.3.1
SOLANACEAE 2.3.3.2 WATER PERMEABILITY OF TESTAE IN LEGUMINOSAE AND OTHER
SPECIES 2.3.3.3 FLAVONOIDS AND OTHER PHENOLICS AS DIRECT AND INDIRECT
GERMINATION INHIBITORS 2.3.3.4 PRE-HARVEST SPROUTING (PHS) IN CEREALS
2.3.3.5 HETEROMORPHISM AND PHYSIOLOGICAL HETEROGENEITY AMONG SEEDS
2.3.3.6 INTERACTIONS WITH ENDOSPERM 2.4 LINK BETWEEN SEED COAT-IMPOSED
DORMANCY AND LONGEVITY 2.5 CONCLUDING REMARKS REFERENCES 3 DEFINITIONS
AND HYPOTHESES OF SEED DORMANCY HENK W.M. HILHORST 3.1 INTRODUCTION 3.2
CLASSIFICATIONS OF DORMANCY 3.2.1 ENDOGENOUS DORMANCY 3.2.2 EXOGENOUS
DORMANCY 3.3 DEFINITIONS OF DORMANCY 3.4 F'RIMARY DORMANCY 3.4.1
INDUCTION OF PRIMARY DORMANCY 3.4.1.1 ROLE OF ABA IN DORMANCY INDUCTION
3.4.1.2 DEVELOPMENTAL PROGRAMS AND DORMANCY INDUCTION 3.4.2 RELEASE OF
PRIMARY DORMANCY 3.4.2.1 AFTER-NPENING 3.4.2.2 REGULATION OF DORMANCY IN
IMBIBED SEEDS 3.5 SECONDARY DORMANCY 3.6 SIGNALING IN DORMANCY 3.6.1
STRESS SIGNA LI NG 3.6.2 SIGNALING NETWORKS 3.6.3 ENVIRONMENTAL SI GNALS
3.7 CHALLENGES FOR THE FUTURE REFERENCES CONTENTS 4 MODELING OF SEED
DORMANCY PHIL S. ALLEN, ROBERTO L. BENECH-ARNOLD, DIEGO BATLLA AND KENT
J. BRADFORD 4.1 INTRODUCTION 4.2 TYPES AND PHENOLOGY OF SEED DORMANCY
4.3 ENVIRONMENTAL CONTROL OF DORMANCY 4.3.1 FACTORS AFFECTING DORMANCY
LEVELS OF SEED POPULATIONS 4.3.1.1 TEMPERATURE 4.3.1.2 AFTER-RIPENING
4.3.1.3 STRATIFICATION 4.3.2 FACTORS THAT STIMULATE GERMINATION 4.3.2.1
FL UCTUATING TEMPERATURE 4.3.2.2 LIGHT 4.3.2.3 NITRATE 4.3.3 CONCEPTUAL
SCHEME OF DORMANCY AND ITS RELATIONSHIP TO MODELING 4.4 APPROACHES TO
MODELING SEED DORMANCY 4.4.1 TEMPERATURE RESPONSE MODELS AND THERMAL
TIME 4.4.2 WATER POTENTIAL RESPONSES AND HYDROTIME MODELS 4.4.3
INTERACTIONS OF TEMPERATURE AND WATER POTENTIAL 4.4.4 MODELING RESPONSES
TO OTHER FACTORS AFFECTING DORMANCY AND GERMINATION 4.5 EXAMPLES OF SEED
DORMANCY MODELS 4.5.1 SOLANUM TUBEROSUM 4.5.2 BROMUS TECTORUM 4.5.3
POLYGONUM AVICULARE 4.5.3.1 MODELING SEED GERMINATION RESPONSES TO
TEMPERATURE 4.5.3.2 MODELING SEED RESPONSES TO GERMINATION-STIMULATING
FACTORS 4.6 POPULATION-BASED THRESHOLD MODELS OF SEED DORMANCY 4.7
CONCLUSIONS AND FUTURE DIRECTIONS REFERENCES 5 GENETIC ASPECTS OF SEED
DORMANCY LEONIE BENTSINK, WIM SOPPE AND MAARTEN KOORNNEEF 5.1
INTRODUCTION 5.2 MUTANT APPROACHES IN ARABIDOPSIS 5.3 MUTANT APPROACHES
IN OTHER SPECIES 5.4 GENETIC ANALYSES OF NATURAL VARIATION 5.4.1 GENETIC
ANALYSIS OF NATURAL VARIATION IN ARABIDOPSIS 5.4.2 NATURAL VARIATION FOR
DORMANCY IN GRASSES 5.5 WHAT DO THE GENETICS TEACH US ABOUT DORMANCY AND
GERMINATION? REFERENCES VIII CONTENTS 6 LIPID METABOLISM IN SEED
DORMANCY STEVEN PENFIELD, HELEN PINFIELD-WELLS AND IAN A. GRAHAM 6.1
INTRODUCTION 6.2 METABOLIC PATHWAYS FOR TAG BREAKDOWN AND CONVERSION TO
SUCROSE 6.2.1 TAG HYDROLYSIS AND ACTIVATION 6.2.2 IMPORT OF FATTY ACIDS
INTO THE PEROXISOME 6.2.3 ACTIVATION OF FATTY ACIDS TO ACYL-COA
THIOESTERS FOR SS-OXIDATION 6.2.4 SS-OXIDATION 6.2.4.1 ACYL-COA OXIDASES
6.2.4.2 MULTIFUNCTIONAL PROTEIN 6.2.4.3 3-L-KETOACYL-COA THIOLASE
6.2.4.4 PEROXISOMAL CITRATE SYNTHASE 6.2.5 GLYOXYLATE CYCLE AND
GLUCONEOGENESIS 6.2.5.1 ISOCITRATE LYASE 6.2.5.2 MALATE SYNTHASE 6.2.5.3
PHOSPHOENOLPYRUVATE CARBOXYLASE 6.3 LIPID METABOLISM AND SEED DORMANCY
6.3.1 IMPORTANCE OF THE ABC TRANSPORTER FOR THE TRANSITION FROM DORMANCY
TO GERMINATION 6.3.2 DEFECTS IN SS-OXIDATION ENZYMES, BUT NOT IN LACS,
AFFECT SEED DORMANCY 6.3.3 STORAGE LIPID MOBILIZATION (GLYOXYLATE CYCLE
AND GLUCONEOGENESIS) IS NOT REQUIRED FOR SEED DORMANCY RELEASE 6.4
MECHANISMS FOR THE INVOLVEMENT OF SS-OXIDATION IN DORMANCY RELEASE 6.4.1
SS-OXIDATION DOES NOT FUEL SEED GERMINATION 6.4.2 SS-OXIDATION AND
HORMONAL SIGNALING 6.4.3 POSSIBLE BIOSYNTHETIC ROLES FOR SS-OXIDATION IN
REGULATING GERMINATION 6.4.4 SS-OXIDATION, REACTIVE OXYGEN SPECIES, AND
REDOX CONTROL 6.5 CONCLUSIONS REFERENCES 7 NITRIC OXIDE IN SEED DORMANCY
AND GERMINATION PAUL C. BETHKE, IGOR G.L. LIBOUREL AND RUSSELL L. JONES
7.1 NITRIC OXIDE IN PLANT GROWTH AND DEVELOPMENT 7.2 CHALLENGES IN NO
CHEMISTRY AND BIOLOGY 7.3 TOOLS USED IN NO RESEARCH 7.4 ROLES OF NO AND
OTHER N-CONTAINING CORNPOUNDS IN SEED DORMANCY AND GERMINATION CONTENTS
7.4.1 NITRATE, NITRITE, AND AMMONIUM 7.4.2 CYANIDE AND AZIDE 7.4.3 NO
DONORS AND GERMINATION 7.4.4 NO SCAVENGERS AND GERMINATION 7.5
BIOCHEMICAL AND MOLECULAR BASIS OF NO ACTION IN SEEDS 7.5.1 SYNTHESIS OF
NO BY PLANTS 7.5.2 NO BINDING TO METAL-CONTAINING PROTEINS 7.5.3 NO AS
AN ANTIOXIDANT 7.6 INTERACTIONS BETWEEN NO AND PHYTOCHROME OR ABA 7.7
ECOLOGICAL SIGNIFICANCE OF NO 7.7.1 NITROGEN AND VEGETATION GAP SENSING
7.7.2 SMOKE AND NO 7.8 UNRESOLVED QUESTIONS AND CONCLUDING REMARKS
REFERENCES 8 A MERGING OF PATHS: ABSCISIC ACID AND HORMONAL CROSS-TALK
IN THE CONTROL OF SEED DORMANCY MAINTENANCE AND ALLEVIATION J. ALLAN
EEURTADO AND ALLZSON R. KERMODE 8.1 INTRODUCTION 8.2 ABSCISIC ACID 8.2.1
ABA IN SEED MATURATION AND THE INDUCTION OF PRIMARY DORMANCY 8.2.2
TRANSCRIPTION FACTORS AND COMBINATORIAL CONTROL OF SEED DEVELOPMENT AND
MATURATION 8.2.3 ABA IN DORMANCY MAINTENANCE AND TERMINATION 8.2.3.1 ABA
SYNTHESIS AND HOMEOSTASIS DURING DORMANCY MAINTENANCE AND TERMINATION
8.2.3.2 ABA SIGNALING FACTORS AND THE CONTROL OF DORMANCY MAINTENANCE
AND TERMINATION 8.3 GIBBERELLIN 8.3.1 GA IS ANTAGONISTIC TO ABA DURING
SEED DEVELOPMENT 8.3.2 GA PROMOTES THE TRANSITION TO GERMINATION 8.4
LIGHT INTERACTIONS 8.4.1 GA SYNTHESIS AND SIGNALING ARE PROMOTED BY
LIGHT THROUGH THE ACTION OF PHYTOCHROME 8.4.2 ABA-ASSOCIATED SIGNALING
PROCESSES ARE OPPOSED BY LIGHT SIGNALING 8.5 ETHYLENE 8.5.1 ETHYLENE
COUNTERACTS ABA DURING SEED DEVELOPMENT 8.5.2 ETHYLENE PROMOTES THE
TRANSITION FROM DORMANCY TO GERMINATION 8.6 AUXIN AND CYTOKININ 8.6.1
AUXIN AND CYTOKININ ESTABLISH THE EMBRYO BODY PLAN DURING SEED
DEVELOPMENT X CONTENTS 8.6.2 AUXIN AND CYTOKININS HAVE NOT BEEN
INTIMATELY LINKED TO DORMANCY MAINTENANCE OR TERMINATION 8.7
BRASSINOSTEROIDS 8.8 G-PROTEIN SIGNALING REVEALS INTEGRATION OF GA, BR,
ABA, AND SUGAR RESPONSES 8.9 PROFILING OF HORMONE METABOLIC PATHWAYS IN
ARABIDOPSIS MUTANTS REVEALS CROSS-TALK 8.10 SUMMARY AND FUTURE
DIRECTIONS REFERENCES 9 REGULATION OF ABA AND GA LEVELS DURING SEED
DEVELOPMENT AND GERMINATION IN ARABIDOPSIS SHINJIRO YAMAGUCHI, YUJI
KAMIYA AND EIJI NAMBARA 9.1 INTRODUCTION 9.2 BIOSYNTHETIC AND
DEACTIVATION PATHWAYS OF ABA AND GA 9.2.1 ABA BIOSYNTHESIS 9.2.2 ABA
DEACTIVATION 9.2.3 ABA-DEFICIENT MUTANTS AND SEED GERMINATION 9.2.4 GA
BIOSYNTHESIS 9.2.5 GA DEACTIVATION 9.2.6 GA-DEFICIENT MUTANTS AND SEED
GERMINATION 9.3 INHIBITORS OF ABA AND GA METABOLISM: EFFICACY AND SIDE
EFFECTS OF DRUGS 9.3.1 DRUGS TO REDUCE ENDOGENOUS ABA LEVELS 9.3.2 DRUGS
TO INCREASE ENDOGENOUS ABA LEVELS 9.3.3 DRUGS TO REDUCE GA LEVELS 9.3.4
SIDE EFFECTS OF DMGS 9.4 REGULATION OF ABA AND GA LEVELS IN ARABIDOPSIS
SEEDS 9.4.1 REGULATION OF ABA AND GA LEVELS DURING SEED DEVELOPMENT
9.4.1.1 ROLES OF ABA AND GA DURING SEED DEVELOPMENT 9.4.1.2 FUS3, A
BALANCER OF ABA AND GA LEVELS 9.4.1.3 AGL15, A TRANSCRIPTIONAL REGULATOR
OF A GA DEACTIVATION GENE 9.4.2 REGULATION OF ABA METABOLISM DURING SEED
IMBIBITION IN ARABIDOPSIS 9.4.3 REGULATION OF GA METABOLISM DURING SEED
IMBIBITION IN ARABIDOPSIS 9.4.3.1 REGULATION OF GA BIOSYNTHESIS BY LIGHT
9.4.3.2 REGULATION OF GA BIOSYNTHESIS BY COLD TEMPERATURE 9.5
CONCLUSIONS AND PERSPECTIVES REFERENCES 10 DE-REPRESSION O CAMILLE M.
STEBER 10.1 INTRODUCTION 10.2 CONTROL OF GERMINATION BY GA SIGNALING
10.3 THE ROLE OF THE UBIQUITIN-PROTEASOME PATHWAY IN GA SIGNALING 10.4
1S RGL2 A 'MASTER REGULATOR' OF SEED GERMINATION? 10.5 SLEEPYL IS A
POSITIVE REGULATOR OF SEED GERMINATION IN ARABIDOPSIS 10.6 DO DELLA
PROTEINS HAVE A CONSERVED ROLE IN SEED GERMINATION? 10.7 FUTURE
DIRECTIONS REFERENCES 11 MECHANISMS AND GENES INVOLVED IN GERMINATION
SENSU STRICTO HIROYUKI NONOGAKI, FENG CHEN AND KENT J. BRADFORD 11.1
INTRODUCTION 11.2 IMBIBITION AND WATER RELATIONS OF SEED GERMINATION
11.3 TESTA/ENDOSPERM RESTRAINT AND EMBRYO GROWTH POTENTIAL 1 1.3.1 TESTA
AND PERICARP 1 1.3.2 ENDOSPERM 11.3.3 CE11 WALL PROTEINS AND HYDROLASES
INVOLVED IN WEAKENING OF COVERING TISSUES 11.3.3.1 EXPANSINS 1 1.3.3.2
XYLOGLUCAN ENDOTRANSGLYCOSYLASE/ HYDROLASES 1 1.3.3.3 ENDO- B-MANNANASE,
A-GALACTOSIDASE, AND SS -MANNOSIDASE 1 1.3.3.4 CELLULASE, ARABINOSIDASE,
XYLOSIDASE 11.3.3.5 POLYGALACTURONASE AND PECTIN METHYLESTERASE 11.3.3.6
SS-1,3-GLUCANASE AND CHITINASE 11.3.3.7 CONCERTED ACTION OF CELL WALL
HYDROLASES AND EXPANSINS 11.3.4 EMBRYO GROWTH POTENTIAL 11.3.4.1
GENERATION OF EMBRYO GROWTH POTENTIAL 11.3.4.2 GENE EXPRESSION
ASSOCIATED WITH EMBRYO GROWTH 1 1.4 APPROACHES TO IDENTIFY ADDITIONAL
GENES INVOLVED IN GERMINATION 1 1.4.1 TRANSCRIPTOME AND PROTEOME
ANALYSES 11.4.2 ACTIVATION TAGGING AND ENHANCER TRAPPING 11.4.3
POTENTIAL INVOLVEMENT OF MICRORNAS IN SEED GERMINATION REFERENCES
CONTENTS TO SEEDLING GROWTH BAS J.W. DEKKERS AND SJEF C.M. SMEEKENS 12.1
INTRODUCTION 12.2 ABA SIGNALING DURING GE R MINATION AND EARLY SEEDLING
GROWTH 12.2.1 ABA RESPONSE MUTANTS ISOLATED IN GERMINATION-BASED SCREENS
12.2.2 ABA INHIBITION OF SEED GERMINATION IS SUPPRESSED BY S UGARS
12.2.3 ABA BLOCKS THE TRANSITION FRORN EMBRYONIC TO VEGETATIVE GROWTH
12.3 SUGAR SIGNALING REPRESSES GERMINATION AND THE TRANSITION TO
VEGETATIVE GROWTH 12.3.1 PLANT SUGAR SIGNALING AND THE IDENTIFICATION OF
SUGAR-RESPONSE MUTANTS 12.3.2 THE GLUCOSE-INSENSITIVE RESPONSE PATHWAY
12.3.3 OTHER FACTORS AFFECTING THE GLUCOSE RESPONSE DURING EARLY
SEEDLING DEVELOPMENT 12.3.4 SUGAR DELAYS SEED GERMINATION IN ARABIDOPSIS
12.3.5 IMBIBED SEEDS RAPIDLY LOSE SENSITIVITY FOR THE GLUCOSE-INDUCED
GERMINATION DELAY 12.4 CONCLUSIONS REFERENCES |
any_adam_object | 1 |
any_adam_object_boolean | 1 |
building | Verbundindex |
bvnumber | BV021794795 |
callnumber-first | Q - Science |
callnumber-label | QK661 |
callnumber-raw | QK661 |
callnumber-search | QK661 |
callnumber-sort | QK 3661 |
callnumber-subject | QK - Botany |
classification_rvk | WN 7500 WN 7600 |
classification_tum | LAN 181f BIO 453f |
ctrlnum | (OCoLC)71004200 (DE-599)BVBBV021794795 |
dewey-full | 581.4/67 |
dewey-hundreds | 500 - Natural sciences and mathematics |
dewey-ones | 581 - Specific topics in natural history of plants |
dewey-raw | 581.4/67 |
dewey-search | 581.4/67 |
dewey-sort | 3581.4 267 |
dewey-tens | 580 - Plants |
discipline | Biologie Agrarwissenschaft Pflanzenbau |
discipline_str_mv | Biologie Agrarwissenschaft Pflanzenbau |
format | Book |
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genre | (DE-588)4143413-4 Aufsatzsammlung gnd-content |
genre_facet | Aufsatzsammlung |
id | DE-604.BV021794795 |
illustrated | Illustrated |
index_date | 2024-07-02T15:45:47Z |
indexdate | 2024-07-09T20:44:47Z |
institution | BVB |
isbn | 1405139838 9781405139830 |
language | English |
lccn | 2006026447 |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-015007389 |
oclc_num | 71004200 |
open_access_boolean | |
owner | DE-M49 DE-BY-TUM DE-703 DE-20 DE-11 |
owner_facet | DE-M49 DE-BY-TUM DE-703 DE-20 DE-11 |
physical | XVII, 367 S. Ill., graph. Darst., Tab. |
publishDate | 2007 |
publishDateSearch | 2007 |
publishDateSort | 2007 |
publisher | Blackwell Publ. |
record_format | marc |
series | Annual plant reviews |
series2 | Annual plant reviews |
spelling | Seed development, dormancy and germination ed. by Kent J. Bradford ... Oxford [u.a.] Blackwell Publ. 2007 XVII, 367 S. Ill., graph. Darst., Tab. txt rdacontent n rdamedia nc rdacarrier Annual plant reviews 27 Includes bibliographical references and index "The formation, dispersal and germination of seeds are crucial stages in the life cycles of gymnosperm and angiosperm plants. The unique properties of seeds, particularly their tolerance to desiccation, their mobility, and their ability to schedule their germination to coincide with times when environmental conditions are favorable to their survival as seedlings, have no doubt contributed significantly to the success of seed-bearing plants. Humans are also dependent upon seeds, which constitute the majority of the world's staple foods (e.g., cereals and legumes). Seeds are an excellent system for studying fundamental developmental processes in plant biology, as they develop from a single fertilized zygote into an embryo and endosperm, in association with the surrounding maternal tissues. As genetic and molecular approaches have become increasingly powerful tools for biological research, seeds have become an attractive system in which to study a wide array of metabolic processes and regulatory systems. Seed Development, Dormancy and Germination provides a comprehensive overview of seed biology from the point of view of the developmental and regulatory processes that are involved in the transition from a developing seed through dormancy and into germination and seedling growth. It examines the complexity of the environmental, physiological, molecular and genetic interactions that occur through the life cycle of seeds, along with the concepts and approaches used to analyze seed dormancy and germination behavior. It also identifies the current challenges and remaining questions for future research. The book is directed at plant developmental biologists, geneticists, plant breeders, seed biologists and graduate students." --NHBS Environment Bookstore. Germination Semences - Dormance Semences - Développement Seeds Development Seeds Dormancy Entwicklung (DE-588)4113450-3 gnd rswk-swf Samenruhe (DE-588)4215081-4 gnd rswk-swf Keimung (DE-588)4163559-0 gnd rswk-swf Samen (DE-588)4130859-1 gnd rswk-swf (DE-588)4143413-4 Aufsatzsammlung gnd-content Samen (DE-588)4130859-1 s Entwicklung (DE-588)4113450-3 s DE-604 Samenruhe (DE-588)4215081-4 s Keimung (DE-588)4163559-0 s b DE-604 Bradford, Kent J. Sonstige oth Annual plant reviews 27 (DE-604)BV012859776 27 http://www.loc.gov/catdir/toc/ecip0619/2006026447.html Table of contents only OEBV Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=015007389&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Seed development, dormancy and germination Annual plant reviews Germination Semences - Dormance Semences - Développement Seeds Development Seeds Dormancy Entwicklung (DE-588)4113450-3 gnd Samenruhe (DE-588)4215081-4 gnd Keimung (DE-588)4163559-0 gnd Samen (DE-588)4130859-1 gnd |
subject_GND | (DE-588)4113450-3 (DE-588)4215081-4 (DE-588)4163559-0 (DE-588)4130859-1 (DE-588)4143413-4 |
title | Seed development, dormancy and germination |
title_auth | Seed development, dormancy and germination |
title_exact_search | Seed development, dormancy and germination |
title_exact_search_txtP | Seed development, dormancy and germination |
title_full | Seed development, dormancy and germination ed. by Kent J. Bradford ... |
title_fullStr | Seed development, dormancy and germination ed. by Kent J. Bradford ... |
title_full_unstemmed | Seed development, dormancy and germination ed. by Kent J. Bradford ... |
title_short | Seed development, dormancy and germination |
title_sort | seed development dormancy and germination |
topic | Germination Semences - Dormance Semences - Développement Seeds Development Seeds Dormancy Entwicklung (DE-588)4113450-3 gnd Samenruhe (DE-588)4215081-4 gnd Keimung (DE-588)4163559-0 gnd Samen (DE-588)4130859-1 gnd |
topic_facet | Germination Semences - Dormance Semences - Développement Seeds Development Seeds Dormancy Entwicklung Samenruhe Keimung Samen Aufsatzsammlung |
url | http://www.loc.gov/catdir/toc/ecip0619/2006026447.html http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=015007389&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV012859776 |
work_keys_str_mv | AT bradfordkentj seeddevelopmentdormancyandgermination |