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      Effect of La(NO<SUB>3</SUB>)<SUB>3</SUB> on seedling growth and physiological characteristics of ryegrass under NaCl stress : Effect of La(NO<SUB>3</SUB>)<SUB>3</SUB> on seedling growth and physiological characteristics of ryegrass under NaCl stress

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      Chinese Journal of Eco-Agriculture
      China Science Publishing & Media Ltd.

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          Mechanisms of salinity tolerance.

          The physiological and molecular mechanisms of tolerance to osmotic and ionic components of salinity stress are reviewed at the cellular, organ, and whole-plant level. Plant growth responds to salinity in two phases: a rapid, osmotic phase that inhibits growth of young leaves, and a slower, ionic phase that accelerates senescence of mature leaves. Plant adaptations to salinity are of three distinct types: osmotic stress tolerance, Na(+) or Cl() exclusion, and the tolerance of tissue to accumulated Na(+) or Cl(). Our understanding of the role of the HKT gene family in Na(+) exclusion from leaves is increasing, as is the understanding of the molecular bases for many other transport processes at the cellular level. However, we have a limited molecular understanding of the overall control of Na(+) accumulation and of osmotic stress tolerance at the whole-plant level. Molecular genetics and functional genomics provide a new opportunity to synthesize molecular and physiological knowledge to improve the salinity tolerance of plants relevant to food production and environmental sustainability.
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            Oxidative stress, antioxidants and stress tolerance.

            Traditionally, reactive oxygen intermediates (ROIs) were considered to be toxic by-products of aerobic metabolism, which were disposed of using antioxidants. However, in recent years, it has become apparent that plants actively produce ROIs as signaling molecules to control processes such as programmed cell death, abiotic stress responses, pathogen defense and systemic signaling. Recent advances including microarray studies and the development of mutants with altered ROI-scavenging mechanisms provide new insights into how the steady-state level of ROIs are controlled in cells. In addition, key steps of the signal transduction pathway that senses ROIs in plants have been identified. These raise several intriguing questions about the relationships between ROI signaling, ROI stress and the production and scavenging of ROIs in the different cellular compartments.
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              Strategies for engineering water-stress tolerance in plants

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                Author and article information

                Journal
                applab
                Chinese Journal of Eco-Agriculture
                Chinese Journal of Eco-Agriculture
                China Science Publishing & Media Ltd.
                1671-3990
                March 20 2011
                March 7 2011
                : 19
                : 2
                : 353-357
                Article
                10.3724/SP.J.1011.2011.00353
                f5b55a48-c4f4-41ff-8084-9504e16454fe
                © 2011
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