Functional characterization of two WD40 family proteins, Alr0671 and All2352, from Anabaena PCC 7120 and deciphering their role in abiotic stress management

WD40 domain-containing proteins are one of the eukaryotes’ most ancient and ubiquitous protein families. Little is known about the presence and function of these proteins in cyanobacteria in general and Anabaena in particular. In silico analysis confirmed the presence of WD40 repeats. Gene expressio...

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Published inPlant molecular biology Vol. 110; no. 6; pp. 545 - 563
Main Authors Rai, Krishna Kumar, Singh, Shilpi, Rai, Ruchi, Rai, L. C.
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LanguageEnglish
Published Dordrecht Springer Netherlands 01.12.2022
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Abstract WD40 domain-containing proteins are one of the eukaryotes’ most ancient and ubiquitous protein families. Little is known about the presence and function of these proteins in cyanobacteria in general and Anabaena in particular. In silico analysis confirmed the presence of WD40 repeats. Gene expression analysis indicated that the transcript levels of both the target proteins were up-regulated up to 4 fold in Cd and drought and 2–3 fold in heat, salt, and UV-B stress. Using a fluorescent oxidative stress indicator, we showed that the recombinant proteins were scavenging reactive oxygen species (ROS) (4–5 fold) more efficiently than empty vectors. Chromatin immunoprecipitation analysis (ChIP) and electrophoretic mobility shift assay (EMSA) revealed that the target proteins function as transcription factors after binding to the promoter sequences. The presence of kinase activity (2–4 fold) in the selected proteins indicated that these proteins could modulate the functions of other cellular proteins under stress conditions by inducing phosphorylation of specific amino acids. The chosen proteins also demonstrated interaction with Zn, Cd, and Cu (1.4–2.5 fold), which might stabilize the proteins’ structure and biophysical functions under multiple abiotic stresses. The functionally characterized Alr0671 and All2352 proteins act as transcription factors and offer tolerance to agriculturally relevant abiotic stresses. Key message Alr0671 and All2352 are novel WD40 proteins of Anabaena capable of regulating biochemical functions and abiotic stress tolerance by acting as a transcription factor and mediating DNA-protein interaction.
AbstractList WD40 domain-containing proteins are one of the eukaryotes’ most ancient and ubiquitous protein families. Little is known about the presence and function of these proteins in cyanobacteria in general and Anabaena in particular. In silico analysis confirmed the presence of WD40 repeats. Gene expression analysis indicated that the transcript levels of both the target proteins were up-regulated up to 4 fold in Cd and drought and 2–3 fold in heat, salt, and UV-B stress. Using a fluorescent oxidative stress indicator, we showed that the recombinant proteins were scavenging reactive oxygen species (ROS) (4–5 fold) more efficiently than empty vectors. Chromatin immunoprecipitation analysis (ChIP) and electrophoretic mobility shift assay (EMSA) revealed that the target proteins function as transcription factors after binding to the promoter sequences. The presence of kinase activity (2–4 fold) in the selected proteins indicated that these proteins could modulate the functions of other cellular proteins under stress conditions by inducing phosphorylation of specific amino acids. The chosen proteins also demonstrated interaction with Zn, Cd, and Cu (1.4–2.5 fold), which might stabilize the proteins’ structure and biophysical functions under multiple abiotic stresses. The functionally characterized Alr0671 and All2352 proteins act as transcription factors and offer tolerance to agriculturally relevant abiotic stresses.Key messageAlr0671 and All2352 are novel WD40 proteins of Anabaena capable of regulating biochemical functions and abiotic stress tolerance by acting as a transcription factor and mediating DNA-protein interaction.
WD40 domain-containing proteins are one of the eukaryotes' most ancient and ubiquitous protein families. Little is known about the presence and function of these proteins in cyanobacteria in general and Anabaena in particular. In silico analysis confirmed the presence of WD40 repeats. Gene expression analysis indicated that the transcript levels of both the target proteins were up-regulated up to 4 fold in Cd and drought and 2-3 fold in heat, salt, and UV-B stress. Using a fluorescent oxidative stress indicator, we showed that the recombinant proteins were scavenging reactive oxygen species (ROS) (4-5 fold) more efficiently than empty vectors. Chromatin immunoprecipitation analysis (ChIP) and electrophoretic mobility shift assay (EMSA) revealed that the target proteins function as transcription factors after binding to the promoter sequences. The presence of kinase activity (2-4 fold) in the selected proteins indicated that these proteins could modulate the functions of other cellular proteins under stress conditions by inducing phosphorylation of specific amino acids. The chosen proteins also demonstrated interaction with Zn, Cd, and Cu (1.4-2.5 fold), which might stabilize the proteins' structure and biophysical functions under multiple abiotic stresses. The functionally characterized Alr0671 and All2352 proteins act as transcription factors and offer tolerance to agriculturally relevant abiotic stresses.
WD40 domain-containing proteins are one of the eukaryotes’ most ancient and ubiquitous protein families. Little is known about the presence and function of these proteins in cyanobacteria in general and Anabaena in particular. In silico analysis confirmed the presence of WD40 repeats. Gene expression analysis indicated that the transcript levels of both the target proteins were up-regulated up to 4 fold in Cd and drought and 2–3 fold in heat, salt, and UV-B stress. Using a fluorescent oxidative stress indicator, we showed that the recombinant proteins were scavenging reactive oxygen species (ROS) (4–5 fold) more efficiently than empty vectors. Chromatin immunoprecipitation analysis (ChIP) and electrophoretic mobility shift assay (EMSA) revealed that the target proteins function as transcription factors after binding to the promoter sequences. The presence of kinase activity (2–4 fold) in the selected proteins indicated that these proteins could modulate the functions of other cellular proteins under stress conditions by inducing phosphorylation of specific amino acids. The chosen proteins also demonstrated interaction with Zn, Cd, and Cu (1.4–2.5 fold), which might stabilize the proteins’ structure and biophysical functions under multiple abiotic stresses. The functionally characterized Alr0671 and All2352 proteins act as transcription factors and offer tolerance to agriculturally relevant abiotic stresses. Key message Alr0671 and All2352 are novel WD40 proteins of Anabaena capable of regulating biochemical functions and abiotic stress tolerance by acting as a transcription factor and mediating DNA-protein interaction.
Audience Academic
Author Singh, Shilpi
Rai, Krishna Kumar
Rai, L. C.
Rai, Ruchi
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  organization: Molecular Biology Section, Centre of Advanced Study in Botany, Institute of Science, Banaras Hindu University
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Snippet WD40 domain-containing proteins are one of the eukaryotes’ most ancient and ubiquitous protein families. Little is known about the presence and function of...
WD40 domain-containing proteins are one of the eukaryotes' most ancient and ubiquitous protein families. Little is known about the presence and function of...
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SubjectTerms Abiotic stress
Amino acids
Anabaena
Biochemistry
Biomedical and Life Sciences
Cellular proteins
Chromatin
Cyanobacteria
DNA binding proteins
Drought
Electrophoretic mobility
Ethylenediaminetetraacetic acid
Gene expression
Immunoprecipitation
Kinases
Life Sciences
Oxidative stress
Phosphorylation
Plant Pathology
Plant Sciences
Promoters (Genetics)
Protein binding
Protein families
Proteins
Reactive oxygen species
Recombinant proteins
Transcription factors
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Title Functional characterization of two WD40 family proteins, Alr0671 and All2352, from Anabaena PCC 7120 and deciphering their role in abiotic stress management
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