| Literature DB >> 33424164 |
Banashree Saikia1,2, Johni Debbarma1,2, Jitendra Maharana3,4, Dhanawantari L Singha1, Natarajan Velmuruagan5, Hariprasanna Dekaboruah1,2, Kallare P Arunkumar6, Channakeshavaiah Chikkaputtaiah1,2.
Abstract
Owing to rapid global climate change, the occurrence of multiple abiotic stresses is known to influence the outburst of biotic stress factors which affects crop productivity. Therefore, it is essential to understand the molecular and cell biology of key genes associated with multiple stress responses in crop plants. SlHyPRP1 and DEA1, the members of eight-cysteine motif (8CM) family genes have been recently identified as putative regulators of multiple stress responses in tomato (Solanum lycopersicum L.). In order to gain deeper insight into cell and molecular biology of SlHyPRP1 and DEA1, we performed their expression analysis in three tomato cultivars and in vivo cell biological analysis. The semi-quantitative PCR and qRT-PCR results showed the higher expression of SlHyPRP1 and DEA1 in leaf, stem, flower and root tissues as compared to fruit and seed tissues in all three cultivars. The expression levels of SlHyPRP1 and DEA1 were found to be relatively higher in a wilt susceptible tomato cultivar (Arka Vikas) than a multiple disease resistant cultivar (Arka Abhed). In vivo cell biological analysis through Gateway cloning and Bi-FC assay revealed the predominant sub-cellular localization and strong protein-protein interaction of SlHyPRP1 and DEA1 at the cytoplasm and plasma membrane. Moreover, SlHyPRP1 showed in vivo interaction with stress responsive proteins WRKY3 and MST1. Our findings suggest that SlHyPRP1 with DEA1 are co-expressed with tissue specificity and might function together by association with WRKY3 and MST1 in plasma membrane for regulating multiple stress responses in the tomato plant. © Prof. H.S. Srivastava Foundation for Science and Society 2020.Entities:
Keywords: Eight-cysteine motif; Hybrid proline rich proteins; Multiple stresses; Plasma membrane; Protein-protein interaction; Tissue specific expression
Year: 2020 PMID: 33424164 PMCID: PMC7772121 DOI: 10.1007/s12298-020-00913-z
Source DB: PubMed Journal: Physiol Mol Biol Plants ISSN: 0974-0430