Pohang University of Science and Technology · Biochemistry, Genetics and Molecular Biology
Professor Inhwan Hwang's research lab focuses on molecular plant biology, with a central emphasis on signal transduction, protein trafficking, and stress responses in plants. The lab investigates key regulatory mechanisms in *Arabidopsis thaliana*, including the role of GSK3-like kinases in abiotic stress tolerance, the function of transit peptides in chloroplast protein targeting, and the involvement of epsin homologs in intracellular trafficking. Additionally, the lab explores bacterial conjugation systems in *Agrobacterium tumefaciens*, particularly the regulatory networks controlling Ti plasmid transfer. These studies integrate molecular genetics, cell biology, and biochemistry to uncover fundamental mechanisms in plant and microbial systems.
Figures are computed from collected data and may differ slightly.
Conjugal transfer of the Agrobacterium tumefaciens nopaline-type Ti plasmid pTiC58 is induced by agrocinopines A and B, opines secreted by crown gall tumors induced by the bacterium. This regulation functions through the transcriptional repressor, AccR. However, actual transcription of the tra genes is regulated by autoinduction through the activator TraR and the substituted homoserine lactone second messenger, Agrobacterium autoinducer (AAI). We have identified a new regulatory element that mod
The transit peptides of nuclear-encoded chloroplast proteins are necessary and sufficient for targeting and import of proteins into chloroplasts. However, the sequence information encoded by transit peptides is not fully understood. In this study, we investigated sequence motifs in the transit peptide of the small subunit of the Rubisco complex by examining the ability of various mutant transit peptides to target green fluorescent protein reporter proteins to chloroplasts in Arabidopsis (Arabido
GSK3/shaggy-like protein kinases have been shown to play diverse roles in development and signal transduction pathways in various organisms. An Arabidopsis homologue of GSK3/shaggy-like kinase, AtGSK1, has been shown to be involved in NaCl stress responses. In order to further clarify the role of AtGSK1 in NaCl stress responses in plants, we generated transgenic Arabidopsis plants that over-expressed AtGSK1 mRNA. These plants showed enhanced resistance to NaCl stress when assayed either as whole
Epsin and related proteins play important roles in various steps of protein trafficking in animal and yeast cells. Many epsin homologs have been identified in plant cells from analysis of genome sequences. However, their roles have not been elucidated. Here, we investigate the expression, localization, and biological role in protein trafficking of an epsin homolog, Arabidopsis thaliana EPSIN1, which is expressed in most tissues we examined. In the cell, one pool of EPSIN1 is associated with acti
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