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Chapter 10Role of Dehydrins in Plant Stress Response | Mohammad Pessar
Chapter 10Role of Dehydrins in Plant Stress Response | Mohammad Pessar

Plant Cell Reports on Twitter: "NEW ONLINE: Involvement of dehydrin  proteins in mitigating the negative effects of drought stress in plants  https://t.co/P5M7SYccEd https://t.co/md8yobjEaR" / Twitter
Plant Cell Reports on Twitter: "NEW ONLINE: Involvement of dehydrin proteins in mitigating the negative effects of drought stress in plants https://t.co/P5M7SYccEd https://t.co/md8yobjEaR" / Twitter

Dehydrins patterns in common bean exposed to drought and watered conditions
Dehydrins patterns in common bean exposed to drought and watered conditions

Figure 1 from Durum wheat dehydrin (DHN-5) confers salinity tolerance to  transgenic Arabidopsis plants through the regulation of proline metabolism  and ROS scavenging system | Semantic Scholar
Figure 1 from Durum wheat dehydrin (DHN-5) confers salinity tolerance to transgenic Arabidopsis plants through the regulation of proline metabolism and ROS scavenging system | Semantic Scholar

Dehydrin (plant) polyclonal antibody - ADI-PLA-100 - Enzo Life Sciences
Dehydrin (plant) polyclonal antibody - ADI-PLA-100 - Enzo Life Sciences

Characterization of Dehydrin protein, CdDHN4-L and CdDHN4-S, and their  differential protective roles against abiotic stress in vitro | BMC Plant  Biology | Full Text
Characterization of Dehydrin protein, CdDHN4-L and CdDHN4-S, and their differential protective roles against abiotic stress in vitro | BMC Plant Biology | Full Text

PLOS ONE: Overexpression of Saussurea involucrata dehydrin gene SiDHN  promotes cold and drought tolerance in transgenic tomato plants
PLOS ONE: Overexpression of Saussurea involucrata dehydrin gene SiDHN promotes cold and drought tolerance in transgenic tomato plants

dehydrin - Twitter Search / Twitter
dehydrin - Twitter Search / Twitter

An overview of dehydrins involved in abiotic stress signaling. | Download  Table
An overview of dehydrins involved in abiotic stress signaling. | Download Table

Characterization of Dehydrin protein, CdDHN4-L and CdDHN4-S, and their  differential protective roles against abiotic stress in vitro | BMC Plant  Biology | Full Text
Characterization of Dehydrin protein, CdDHN4-L and CdDHN4-S, and their differential protective roles against abiotic stress in vitro | BMC Plant Biology | Full Text

Figure 2 | The dehydrin gene of the Arctic plant Cerastium arcticum, CaDHN,  increases tolerance to multiple stresses in Arabidopsis thaliana |  SpringerLink
Figure 2 | The dehydrin gene of the Arctic plant Cerastium arcticum, CaDHN, increases tolerance to multiple stresses in Arabidopsis thaliana | SpringerLink

PLOS ONE: Overexpression of Saussurea involucrata dehydrin gene SiDHN  promotes cold and drought tolerance in transgenic tomato plants
PLOS ONE: Overexpression of Saussurea involucrata dehydrin gene SiDHN promotes cold and drought tolerance in transgenic tomato plants

Overexpression of Prunus mume Dehydrin Genes in Tobacco Enhances Tolerance  to Cold and Drought | Plant Science - Frontiers
Overexpression of Prunus mume Dehydrin Genes in Tobacco Enhances Tolerance to Cold and Drought | Plant Science - Frontiers

Frontiers | The K-segments of wheat dehydrin WZY2 are essential for its  protective functions under temperature stress | Plant Science
Frontiers | The K-segments of wheat dehydrin WZY2 are essential for its protective functions under temperature stress | Plant Science

Dehydrin in the past four decades: From chaperones to transcription  co-regulators in regulating abiotic stress response - ScienceDirect
Dehydrin in the past four decades: From chaperones to transcription co-regulators in regulating abiotic stress response - ScienceDirect

PLOS ONE: Dehydrin-like Proteins in the Necrotrophic Fungus Alternaria  brassicicola Have a Role in Plant Pathogenesis and Stress Response
PLOS ONE: Dehydrin-like Proteins in the Necrotrophic Fungus Alternaria brassicicola Have a Role in Plant Pathogenesis and Stress Response

The dehydrin gene of the Arctic plant Cerastium arcticum, CaDHN, increases  tolerance to multiple stresses in Arabidopsis thaliana | SpringerLink
The dehydrin gene of the Arctic plant Cerastium arcticum, CaDHN, increases tolerance to multiple stresses in Arabidopsis thaliana | SpringerLink

Overview of signaling pathways and factors involved in signaling... |  Download Scientific Diagram
Overview of signaling pathways and factors involved in signaling... | Download Scientific Diagram

Laboratory of Functional Plant Physiology (Hara) | Faculty of  Agriculture,Shizuoka Universty
Laboratory of Functional Plant Physiology (Hara) | Faculty of Agriculture,Shizuoka Universty

Evolutionary analysis of angiosperm dehydrin gene family reveals three  orthologues groups associated to specific protein domains | Scientific  Reports
Evolutionary analysis of angiosperm dehydrin gene family reveals three orthologues groups associated to specific protein domains | Scientific Reports

Frontiers | Identification and Characterization of Five Cold Stress-Related  Rhododendron Dehydrin Genes: Spotlight on a FSK-Type Dehydrin With Multiple  F-Segments | Bioengineering and Biotechnology
Frontiers | Identification and Characterization of Five Cold Stress-Related Rhododendron Dehydrin Genes: Spotlight on a FSK-Type Dehydrin With Multiple F-Segments | Bioengineering and Biotechnology

Plant dehydrins and stress tolerance: versatile proteins for complex  mechanisms: Plant Signaling & Behavior: Vol 6, No 10
Plant dehydrins and stress tolerance: versatile proteins for complex mechanisms: Plant Signaling & Behavior: Vol 6, No 10

Functional characterization of KS-type dehydrin ZmDHN13 and its related  conserved domains under oxidative stress | Scientific Reports
Functional characterization of KS-type dehydrin ZmDHN13 and its related conserved domains under oxidative stress | Scientific Reports

Involvement of dehydrin proteins in mitigating the negative effects of  drought stress in plants | SpringerLink
Involvement of dehydrin proteins in mitigating the negative effects of drought stress in plants | SpringerLink