• Produktbild: Waterlogging Signalling and Tolerance in Plants
  • Produktbild: Waterlogging Signalling and Tolerance in Plants

Waterlogging Signalling and Tolerance in Plants

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Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

14.11.2014

Herausgeber

Stefano Mancuso + weitere

Verlag

Springer Berlin

Seitenzahl

294

Maße (L/B/H)

23,5/15,5/1,8 cm

Gewicht

482 g

Auflage

2010

Sprache

Englisch

ISBN

978-3-642-42560-8

Beschreibung

Portrait

Stefano Mancuso, Professor an der Universität Florenz, leitet das Laboratorio Internazionale di Neurobiologia Vegetale und ist Gründungsmitglied der International Society for Plant Signaling and Behavior. Mit über 250 wissenschaftlichen Publikationen gilt er international als der Spezialist zum Thema. Er sprach 2010 auf der TED-Konferenz, nahm mit Experimenten am europäischen Space Shuttle-Programm teil und stellt auf der EXPO 2015 in Mailand ein neuartiges Pflanzenkultivierungsprojekt vor.

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

14.11.2014

Herausgeber

Verlag

Springer Berlin

Seitenzahl

294

Maße (L/B/H)

23,5/15,5/1,8 cm

Gewicht

482 g

Auflage

2010

Sprache

Englisch

ISBN

978-3-642-42560-8

Herstelleradresse

Springer-Verlag KG
Sachsenplatz 4-6
1201 Wien
AT

Email: GPSR Kontakt

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  • Produktbild: Waterlogging Signalling and Tolerance in Plants
  • Produktbild: Waterlogging Signalling and Tolerance in Plants
  • Part 1: Whole-plant regulation

    Oxygen Transport in Waterlogged Plants
    Lars Wegner

    1.1 Introduction
    1.2 O2 transport in plants: Some basic physics, and modeling of O2 diffusion
    1.3 A survey of methods to study O2 transport and related parameters in higher plants
    1.4 Anatomical adaptations to flooding stress: Barriers to radial oxygen loss
    1.5 Anatomical adaptations to flooding stress: Formation of aerenchyma
    1.6 Mechanisms of O2 transport in plants
    1.7 O2 transport in plants: Ecological implications
    1.8 Open questions and directions of further research
    1.9 Acknowledgements
    1.10 Literature cited

    Waterlogging and Plant Nutrient Uptake
    J. Theo M. Elzenga & Hans van Veen

    2.1 Abstract
    2.2 Introduction
    2.3 Effects of hypoxia on nutrient uptake
    2.3.1 Effects on root elongation and nutrient uptake capacity
    2.3.2 Waterlogging effects on nutrient availability
    2.3.3 Plant responses to waterlogging increasing uptake surface
    2.3.4 Waterlogging decreases nutrient bulk flow
    2.3.5 Changes in nutrient uptake kinetics
    2.4 Summary and concluding remarks

    Strategies for Adaptation to Waterlogging and Hypoxia in Nitrogen Fixing Nodules of Legumes
    Daniel M. Roberts, Won Gyu Choi and Jin Ha Hwang

    Abstract
    3.1 Introduction: The Oxygen Diffusion Barrier in Nodules
    3.1.1 Nodule morphology and the gas diffusion barrier
    3.1.2 Modulation of the gas diffusion barrier
    3.1.3 Control of the gas diffusion barrier in response to sub-ambient O2 and flooding 3.1.4 Mechanism of regulation of the gas diffusion barrier in response to pO2
    3.2 Developmental and morphological adaptations of nitrogen-fixing nodules to low oxygen stress
    3.2.1 Secondary Aerenchyma Formation
    3.2.2 The Inner Cortex and Infected Zone
    3.2.3 Influence of adaptive changes on nitrogen fixation under altered rhizosphere pO2 conditions
    3.3 Strategies of Adaptation: Flood-tolerant legumes and oxygen diffusion
    3.3.1 Tropical wetland legumes
    3.3.1.1 Nodulation of submerged stems and roots: increased porosity mechanisms
    3.3.1.2 Aerial nodulation of stems and adventitious roots: avoidance mechanisms
    3.3.2 Lotus uliginosus: a temperate wetland legume
    3.4 Strategies of Adaptation: Alternate nodulation pathways for flooding tolerant legumes
    3.4.1 Intercellular -based mechanism of nodulation: The Lateral Root Boundary Pathway
    3.4.2 Sesbania rostrata: A model legume for aquatic nodulation
    3.5 Summary and Concluding Remarks
    References

    Oxygen transport in the sapwood of trees
    Sergio Mugnai & Stefano Mancuso

    4.1 Brief anatomy of a woody stem
    4.2 The atmosphere inside a stem: gas composition and its effect on respiration
    4.3 Gas transport and diffusion
    4.4 Radial and axial oxygen transport to sapwood
    4.5 Sapwood respiration
    References
    Part 2: Intracellular Signaling

    pH Signaling During Anoxia
    Hubert Felle

    Abstract.
    5.1 Introduction
    5.2 pH, signal and regulator
    5.2.1 pH as systemic signal
    5.2.2 The nature of the pH-transmission
    5.2.3 What is the information?
    5.3 Anoxic energy crisis and pH-regulation
    5.3.1 The Davis-Roberts-hypothesis: aspects of pH signaling
    5.3.2 Cytoplasmic acidification, ATP and membrane potential
    5.3.3 Cytoplasmic pH (-change), an error signal?
    5.4 pH-interactions between the (major) compartments during anoxia
    5.4.1 The pH trans-tonoplast pH gradient
    5.4.2 Cytoplasm and apoplast
    5.4.3 The apoplast under anoxia
    5.5 Anoxia