Calmodulin-like domain protein kinases (CDPKs) represent a new class of calciumdependent protein-phosphorylating enzymes that are not activated by calmodulin or phospholipid compounds. They have been found exclusively in plant and protozoal tissues. CDPKs are typified by four distinct domains: an N-
Comparative modeling of the three-dimensional structure of the calmodulin-related TCH2 protein from arabidopsis
β Scribed by Amir R. Khan; Keith A. Johnson; Janet Braam; Michael N. G. James
- Publisher
- John Wiley and Sons
- Year
- 1997
- Tongue
- English
- Weight
- 292 KB
- Volume
- 27
- Category
- Article
- ISSN
- 0887-3585
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β¦ Synopsis
Plants adapt to various stresses by developmental alterations that render them less easily damaged. Expression of the TCH2 gene of Arabidopsis is strongly induced by stimuli such as touch and wind. The gene product, TCH2, belongs to the calmodulin (CaM) family of proteins and contains four highly conserved Ca 2Ψ -binding EF-hands. We describe here the structure of TCH2 in the fully Ca 2Ψ -saturated form, constructed using comparative molecular modeling, based on the x-ray structure of paramecium CaM. Like known CaMs, the overall structure consists of two globular domains separated by a linker helix. However, the linker region has added flexibility due to the presence of 5 glycines within a span of 6 residues. In addition, TCH2 is enriched in Lys and Arg residues relative to other CaMs, suggesting a preference for targets which are more negatively charged. Finally, a pair of Cys residues in the C-terminal domain, Cys126 and Cys131, are sufficiently close in space to form a disulfide bridge. These predictions serve to direct future biochemical and structural studies with the overall aim of understanding the role of TCH2 in the cellular response of Arabidopsis to environmental stimuli. Proteins 27:144-153
π SIMILAR VOLUMES
Homology or comparative modeling is aimed at modeling the three-dimensional structure of a target sequence of unknown structure using the framework of an already known fold. Traditionally, homology modeling has been applied to targets with clear sequence similarity to proteins of known structure. Be