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Published on: August 22, 2018
Disorder and function: a review of the dehydrin protein family
Steffen P Graether1, Kelly F Boddington1
1Department of Molecular and Cellular Biology, University of Guelph Guelph, ON, Canada.
Insights
Dehydrins, a type of LEA protein, protect plants from abiotic stresses like drought and cold. Their protective mechanisms, particularly in vivo, are still being explored, with known roles in membrane and enzyme protection.
Area of Science:
- Plant Molecular Biology
- Biochemistry
- Stress Physiology
Background:
- Dehydrins are LEA proteins involved in plant abiotic stress responses.
- They possess conserved K-, Y-, and S-segments, with K-segments being essential.
- Abiotic stresses induce dehydrin expression, but their precise in vivo protective functions remain unclear.
Purpose of the Study:
- To review current knowledge on dehydrin sequences and structures.
- To examine the ligands that bind to dehydrins.
- To elucidate the in vivo protective mechanisms of dehydrins.
Main Methods:
- Literature review of genetic and protein evidence.
- Analysis of in vitro biochemical assays and localization experiments.
- Examination of protein structure and ligand-binding studies.
Main Results:
- Dehydrins exhibit membrane protection, enzyme cryoprotection, and ROS protection.
- They function as peripheral membrane proteins due to hydrophilic and charged amino acid content.
- Dehydrins are intrinsically disordered but gain structure upon ligand binding.
Conclusions:
- Dehydrins are crucial for plant stress tolerance.
- Their disordered nature allows for ligand-induced structural changes, facilitating protective roles.
- Further research is needed to fully understand their in vivo mechanisms and interactions.
Abstract:
Dehydration proteins (dehydrins) are group 2 members of the late embryogenesis abundant (LEA) protein family. The protein architecture of dehydrins can be described by the presence of three types of conserved sequence motifs that have been named the K-, Y-, and S-segments. By definition, a dehydrin must contain at least one copy of the lysine-rich K-segment. Abiotic stresses such as drought, cold, and salinity cause the upregulation of dehydrin mRNA and protein levels. Despite the large body of genetic and protein evidence of the importance of these proteins in stress response, the in vivo protective mechanism is not fully known. In vitro experimental evidence from biochemical assays and localization experiments suggests multiple roles for dehydrins, including membrane protection, cryoprotection of enzymes, and protection from reactive oxygen species. Membrane binding by dehydrins is likely to be as a peripheral membrane protein, since the protein sequences are highly hydrophilic and contain many charged amino acids. Because of this, dehydrins in solution are intrinsically disordered proteins, that is, they have no well-defined secondary or tertiary structure. Despite their disorder, dehydrins have been shown to gain structure when bound to ligands such as membranes, and to possibly change their oligomeric state when bound to ions. We review what is currently known about dehydrin sequences and their structures, and examine the various ligands that have been shown to bind to this family of proteins.
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