Il-Do Hwang
Pohang University of Science and Technology · Agricultural and Biological Sciences
About the Lab
Professor Il-Do Hwang's research lab focuses on plant signal transduction, particularly the molecular mechanisms underlying hormone signaling, stress responses, and developmental regulation in plants. The lab investigates key signaling pathways involving cytokinins, abscisic acid, glucose, and calcium, with a strong emphasis on two-component systems, receptor kinases, and downstream transcriptional regulators. Using genetic, biochemical, and cell biological approaches, the lab uncovers how plants integrate environmental cues with internal developmental programs to maintain homeostasis and adapt to changing conditions. Their work has significantly advanced understanding of hormone signaling networks, especially in regulating processes like leaf senescence, seed dormancy, and stress adaptation.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Glucose modulates many vital processes in photosynthetic plants. Analyses of Arabidopsis glucose insensitive2 (gin2) mutants define the physiological functions of a specific hexokinase (HXK1) in the plant glucose-signaling network. HXK1 coordinates intrinsic signals with extrinsic light intensity. HXK1 mutants lacking catalytic activity still support various signaling functions in gene expression, cell proliferation, root and inflorescence growth, and leaf expansion and senescence, thus demonstr
Despite long-standing observations on diverse cytokinin actions, the discovery path to cytokinin signaling mechanisms was tortuous. Unyielding to conventional genetic screens, experimental innovations were paramount in unraveling the core cytokinin signaling circuitry, which employs a large repertoire of genes with overlapping and specific functions. The canonical two-component transcription circuitry involves His kinases that perceive cytokinin and initiate signaling, as well as His-to-Asp phos
The two-component system, consisting of a histidine (His) protein kinase that senses a signal input and a response regulator that mediates the output, is an ancient and evolutionarily conserved signaling mechanism in prokaryotes and eukaryotes. The identification of 54 His protein kinases, His-containing phosphotransfer proteins, response regulators, and related proteins in Arabidopsis suggests an important role of two-component phosphorelay in plant signal transduction. Recent studies indicate
Cytokinins are plant hormones with profound roles in growth and development, including control of leaf longevity. Although the cytokinin signal is known to be perceived by histidine kinase receptors, the underlying molecular mechanism and specificity of the receptors leading to delayed leaf senescence have not yet been elucidated. Here, we found that AHK3, one of the three cytokinin receptors in Arabidopsis, plays a major role in controlling cytokinin-mediated leaf longevity through a specific p
The magnitude and duration of a cytosolic Ca(2+) release can potentially be altered by changing the rate of Ca(2+) efflux. In plant cells, Ca(2+) efflux from the cytoplasm is mediated by H(+)/Ca(2+)-antiporters and two types of Ca(2+)-ATPases. ACA2 was recently identified as a calmodulin-regulated Ca(2+)-pump located in the endoplasmic reticulum. Here, we show that phosphorylation of its N-terminal regulatory domain by a Ca(2+)-dependent protein kinase (CDPK isoform CPK1), inhibits both basal ac
The signal transduction pathway governed by the phytohormone abscisic acid (ABA) regulates not only abiotic stress responses but also early developmental programs such as seed dormancy, germination and seedling growth in response to environmental signals. Optimal plant growth and development depend on the integration of environmental stimuli and intrinsic developmental programs. Here, we show that the homeodomain transcription factors BLH1 and KNAT3, previously implicated in embryo sac developme
During brassinosteroid (BR) signaling in Arabidopsis, BSU1 (bri1 SUPPRESSOR1) phosphatase and BIN2 (BRASSINOSTEROID INSENSITIVE2) kinase regulate the signal intensity by determining the phosphorylation status of the transcription factors BZR1 (BRASSINAZOLE RESISTANT1) and BES1 (bri1 EMS SUPPRESSOR1). Here, we report hat BIN2 and BSU1 are nucleocytoplasmic regulators that modulate the subcellular localization of BES1, with differential activities between the nucleus and the cytosol. In our experi
Cytokinin has been considered to be a master regulator of plant growth and development, but only in the past several years has substantial progress been made uncovering the roles of cytokinins at various developmental stages. Recent studies on key metabolic enzymes and signaling components have contributed to understanding the basic mechanism of biosynthesis and perception of cytokinin within a whole plant body. The initial products of de novo cytokinin biosynthesis in higher plants and Agrobact
Brassinosteroids BRs)play important roles in plant growth and development.BRs modulate the phosphorylation status of two crucial transcription factors, BRI1 EMS SUPPRESSOR1 BES1)and BRASSINAZOLE RESISTANT1 (BZR1).Here we show that BES1 functions as a nucleocytoplasmic signal transmitter, and that its subcellular localization modulates the output intensity of the BR signal.BRASSINOSTEROID INSENSITIVE2 (BIN2)and other group II GLYCOGEN SYNTHASE KINASE 3 GSK3)-like kinases phosphorylate BES1 and in
Research Areas
Dive deeper into Il-Do Hwang's research on Nubint
Open this lab's papers in the app to read with AI, summarize, and cite in your writing.