By Shabir Hussain Wani, Mohammad Anwar Hossain
Salinity pressure at present affects greater than eighty million hectares of land around the globe and extra arable land may be impacted sooner or later because of international weather alterations. Managing Salt Tolerance in crops: Molecular and Genomic Perspectives offers exact molecular and genomic ways for the improvement of crop crops tolerant to salinity rigidity. The booklet discusses salinity tension in plant edition and productiveness, biochemical and molecular mechanisms answerable for plant salt tolerance, and genomic ways for the advance of vegetation tolerant to salinity stress.
With chapters written via top scientists desirous about plant salinity tension study, this publication brings jointly biochemical, physiological, and molecular concepts used to enhance crop crops with elevated salinity tolerance. The editors combine the latest findings in regards to the key organic determinants of salinity pressure tolerance with modern crop development ways. They contain rising issues and state of the art wisdom relating to salt pressure responses and tolerance mechanisms and describe salinity tension in vegetation and its results on plant progress and productivity.
Time is of the essence for this factor, as worldwide weather swap will additional exacerbate the issues of salt rigidity within the close to destiny. With authoritative insurance of the most important elements impacting the world’s crop construction, this e-book calls realization to fundamental genetic, physiological, and biochemical elements of plant salinity tension. It is helping you improve traditional and biotechnological purposes which can bring about more advantageous crop productiveness in annoying environments.
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Extra info for Managing salt tolerance in plants : molecular and genomic perspectives
Proteomic analysis on a high salt tolerance introgression strain of Triticum aestivum/ Thinopyrum ponticum. Proteomics 8:1470–1489. , R. Yang, B. Wang, G. Liu, C. Yang, and Y. Cheng. 2010. Functional characterization of a plasma membrane Na+/H+ antiporter from alkali grass (Puccinellia tenuiflora). Molecular Biology Reports 38:4813–4822. , R. A. Leigh, N. Pollard. 1977. A hypothesis on cytoplasmic osmoregulation. , Cifferi, O. ), Regulation of Cell Membrane Activities in Plants. Elsevier, Amsterdam, the Netherlands, pp.
Y. L. Li, F. Li, C. M. Xia. 2008. Proteomic analysis on a high salt tolerance introgression strain of Triticum aestivum/ Thinopyrum ponticum. Proteomics 8:1470–1489. , R. Yang, B. Wang, G. Liu, C. Yang, and Y. Cheng. 2010. Functional characterization of a plasma membrane Na+/H+ antiporter from alkali grass (Puccinellia tenuiflora). Molecular Biology Reports 38:4813–4822. , R. A. Leigh, N. Pollard. 1977. A hypothesis on cytoplasmic osmoregulation. , Cifferi, O. ), Regulation of Cell Membrane Activities in Plants.
Observing the rapid light curves obtained for both species at different stress levels, it is possible to observe that there are evident differences either between species or, in particular for Halimione portulacoides, between stress levels. In S. fruticosa, the maximum electron transport rate (ETR), photosynthetic efficiency, and the onset of light saturation are very similar among healthy and stressed individuals, only with small differences also regarding the rETR at different light exposures.
Managing salt tolerance in plants : molecular and genomic perspectives by Shabir Hussain Wani, Mohammad Anwar Hossain