DNA-Binding Activity of CAMTA3 Is Essential for Its Function: Identification of Critical Amino Acids for Its Transcriptional Activity

Author:

Prasad Kasavajhala V. S. K.1ORCID,Abdel-Hameed Amira A. E.12,Jiang Qiyan13,Reddy Anireddy S. N.1

Affiliation:

1. Department of Biology and Program in Cell and Molecular Biology, Colorado State University, Fort Collins, CO 80523, USA

2. Department of Botany and Microbiology, Faculty of Science, Zagazig University, Zagazig 44519, Egypt

3. National Key Facility for Crop Gene Resources and Genetic Improvement, Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing 100081, China

Abstract

Calmodulin-binding transcription activators (CAMTAs), a small family of highly conserved transcription factors, function in calcium-mediated signaling pathways. Of the six CAMTAs in Arabidopsis, CAMTA3 regulates diverse biotic and abiotic stress responses. A recent study has shown that CAMTA3 is a guardee of NLRs (Nucleotide-binding, Leucine-rich repeat Receptors) in modulating plant immunity, raising the possibility that CAMTA3 transcriptional activity is dispensable for its function. Here, we show that the DNA-binding activity of CAMTA3 is essential for its role in mediating plant immune responses. Analysis of the DNA-binding (CG-1) domain of CAMTAs in plants and animals showed strong conservation of several amino acids. We mutated six conserved amino acids in the CG-1 domain to investigate their role in CAMTA3 function. Electrophoretic mobility shift assays using these mutants with a promoter of its target gene identified critical amino acid residues necessary for DNA-binding activity. In addition, transient assays showed that these residues are essential for the CAMTA3 function in activating the Rapid Stress Response Element (RSRE)-driven reporter gene expression. In line with this, transgenic lines expressing the CG-1 mutants of CAMTA3 in the camta3 mutant failed to rescue the mutant phenotype and restore the expression of CAMTA3 downstream target genes. Collectively, our results provide biochemical and genetic evidence that the transcriptional activity of CAMTA3 is indispensable for its function.

Funder

National Science Foundation

Agriculture and Food Research Initiative competitive

Publisher

MDPI AG

Subject

General Medicine

Reference48 articles.

1. Reactive oxygen species homeostasis and signalling during drought and salinity stresses;Miller;Plant Cell Environ.,2010

2. Dhlamini, Z., Spillane, C., Moss, J.P., Ruane, J., Urquia, N., and Sonnino, A. (2005). Status of Research and Applications of Crop Biotechnologies in Developing Countries: Preiminary Assessment, Food and Agriculture Organization of the United Nations.

3. Progress studies of drought-responsive genes in rice;Hadiarto;Plant Cell Rep.,2011

4. Crosstalk between abiotic and biotic stress responses: A current view from the points of convergence in the stress signaling networks;Fujita;Curr. Opin. Plant Biol.,2006

5. Signal transduction and the control of gene expression;Brivanlou;Science,2002

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