Molecular characterization of the cold- and heat-induced Arabidopsis PXL1 gene and its potential role in transduction pathways under temperature fluctuations created by Chang Gyo Jung, Sun-Goo Hwang , Yong Chan Park, Hyeon Mi Park, Dong Sub Kim, Duck Hwan Park, Cheol Seong Jang
Material type:
- text
- unmediated
- volume
- 0176-1617
- QK711.2 JOU
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Main Library - Special Collections | QK711.2 JOU (Browse shelf(Opens below)) | Vol. 176 (pages138-146) | Not for loan | For in house use only | |||
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Main Library - Special Collections | QK711.2 JOU (Browse shelf(Opens below)) | Vol. 176 (pages138-146) | Not for loan | For in house use only |
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LRR-RLK (Leucine-Rich Repeat Receptor-Like Kinase) proteins are believed to play essential roles in cell-to-cell communication during various cellular processes including development, hormone perception, and abiotic stress responses. We isolated an LRR-RLK gene previously named Arabidopsis PHLOEM INTERCALATED WITH XYLEM-LIKE 1 (AtPXL1) and examined its expression patterns. AtPXL1 was highly induced by cold and heat stress, but not by drought. The fluorescence signal of 35S::AtPXL1-EGFP was closely localized to the plasma membrane. A yeast two-hybrid and bimolecular fluorescence complementation assay exhibited that AtPXL1 interacts with both proteins, A. thaliana histidine-rich dehydrin1 (AtHIRD1) and A. thaliana light-harvesting protein complex I (AtLHCA1). We found that AtPXL1 possesses autophosphorylation activity and phosphorylates AtHIRD1 and AtLHCA1 in an in vitro assay. Subsequently, we found that the knockout line (atpxl1) showed hypersensitive phenotypes when subjected to cold and heat during the germination stage, while the AtPXL1 overexpressing line as well as wild type plants showed high germination rates compared to the knockout plants. These results provide an insight into the molecular function of AtPXL1 in the regulation of signal transduction pathways under temperature fluctuations.
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