Title of article :
Understanding molecular mechanism of higher plant plasticity under abiotic stress
Author/Authors :
Shao، نويسنده , , Hongbo and Guo، نويسنده , , Qing-Jie and Chu، نويسنده , , Li-Ye and Zhao، نويسنده , , Xi-Ning and Su، نويسنده , , Zhongliang and Hu، نويسنده , , Ya-Chen and Cheng، نويسنده , , Jiang-Feng، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Pages :
9
From page :
37
To page :
45
Abstract :
Higher plants play the most important role in keeping a stable environment on the earth, which regulate global circumstances in many ways in terms of different levels (molecular, individual, community, and so on), but the nature of the mechanism is gene expression and control temporally and spatially at the molecular level. In persistently changing environment, there are many adverse stress conditions such as cold, drought, salinity and UV-B (280–320 mm), which influence plant growth and crop production greatly. Plants differ from animals in many aspects, but the important may be that plants are more easily influenced by environment than animals. Plants have a series of fine mechanisms for responding to environmental changes, which has been established during their long-period evolution and artificial domestication. These mechanisms are involved in many aspects of anatomy, physiology, biochemistry, genetics, development, evolution and molecular biology, in which the adaptive machinery related to molecular biology is the most important. The elucidation of it will extremely and purposefully promote the sustainable utilization of plant resources and make the best use of its current potential under different scales. This molecular mechanism at least include environmental signal recognition (input), signal transduction (many cascade biochemical reactions are involved in this process), signal output, signal responses and phenotype realization, which is a multi-dimensional network system and contain many levels of gene expression and regulation. We will focus on the molecular adaptive machinery of higher plant plasticity under abiotic stresses.
Keywords :
abiotic stress , Plant gene regulatory network system , Biological water-saving , Agricultural sustainable development , Signal , Physiological mechanisms , Biointerfaces
Journal title :
Colloids and Surfaces B Biointerfaces
Serial Year :
2007
Journal title :
Colloids and Surfaces B Biointerfaces
Record number :
1967917
Link To Document :
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