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Giltsu Choi

Korea Advanced Institute of Science and Technology · Agricultural and Biological Sciences

About the Lab

Professor Giltsu Choi's research lab focuses on plant developmental biology, with a central emphasis on the molecular mechanisms underlying light signaling, hormone regulation, and secondary metabolism in angiosperms. The lab investigates how transcription factors such as PIFs and PIL5 integrate environmental cues—particularly light and gibberellin signaling—to control key developmental transitions like seed germination and photomorphogenesis. A major research direction involves dissecting the roles of phytochromes and jasmonate in regulating gene expression networks during reproductive development and stress responses. The lab also explores the genetic and biochemical basis of flower color diversity, particularly through the substrate specificity of key enzymes like dihydroflavonol 4-reductase (DFR).

light signalingphytochromehormone regulationflower colortranscription factors

Research Overview

Papers
101
Total Citations
11,279
Papers (5y)
18
Primary Field
Agricultural and Biological Sciences

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
18total
2022
2023
2024
2025
2026
Citations per year (5y)
229total
20222023202420252026

Selected Papers

15
1
Article|510 citations·2009
Phytochromes promote seedling light responses by inhibiting four negatively-acting phytochrome-interacting factors
Jieun Shin, Keunhwa Kim, Hyojin Kang, Ismayil S. Zulfugarov, Gabyong Bae, Choon-Hwan Lee, Doheon Lee, Giltsu Choi
SJR Q1Proceedings of the National Academy of SciencesOA

PIF3 is a phytochrome-interacting basic helix-loop-helix transcription factor that negatively regulates light responses, including hypocotyl elongation, cotyledon opening, and hypocotyl negative gravitropism. However, the role of PIF3 in chlorophyll biosynthesis has not been clearly defined. Here, we show that PIF3 also negatively regulates chlorophyll biosynthesis by repressing biosynthetic genes in the dark. Consistent with the gene expression patterns, the etiolated pif3 mutant accumulated a

Plant ScienceAgricultural and Biological Sciences
2
Article|406 citations·2006
Light activates the degradation of PIL5 protein to promote seed germination through gibberellin in Arabidopsis
Eunkyoo Oh, Shinjiro Yamaguchi, Yuji Kamiya, Gabyong Bae, Wonil Chung, Giltsu Choi
SJR Q1The Plant JournalOA

Angiosperm seeds integrate various environmental signals, such as water availability and light conditions, to make a proper decision to germinate. Once the optimal conditions are sensed, gibberellin (GA) is synthesized, triggering germination. Among environmental signals, light conditions are perceived by phytochromes. However, it is not well understood how phytochromes regulate GA biosynthesis. Here we investigated whether phytochromes regulate GA biosynthesis through PIL5, a phytochrome-intera

Plant ScienceAgricultural and Biological Sciences
3
Article|372 citations·2006
Transcriptional regulators of stamen development in Arabidopsis identified by transcriptional profiling
Ajin Mandaokar, Bryan Thines, Byongchul Shin, B. Markus Lange, Goh Choi, Goh Choi, Yeon Jong Koo, Yung Joon Yoo, Yang Do Choi, Giltsu Choi, Giltsu Choi, John Browse
SJR Q1The Plant Journal

In Arabidopsis, jasmonate is required for stamen and pollen maturation. Mutants deficient in jasmonate synthesis, such as opr3, are male-sterile but become fertile when jasmonate is applied to developing flower buds. We have used ATH1 oligonucleotide arrays to follow gene expression in opr3 stamens for 22 h following jasmonate treatment. In these experiments, a total of 821 genes were specifically induced by jasmonate and 480 genes were repressed. Comparisons with data from previous studies indi

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|290 citations·1999
Phytochrome signalling is mediated through nucleoside diphosphate kinase 2
Giltsu Choi, Hankuil Yi, Jae‐Ho Lee, Yong‐Kook Kwon, Moon‐Soo Soh, Byongchul Shin, Zigmund Luka, Tae-Ryong Hahn, Pill-Soon Song
SJR Q1Nature
Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|265 citations·2001
Alteration of a single amino acid changes the substrate specificity of dihydroflavonol 4‐reductase
Eric T. Johnson, Sunhyo Ryu, Hankuil Yi, Byongchul Shin, Hyeonsook Cheong, Giltsu Choi
SJR Q1The Plant JournalOA

Many plant species exhibit a reduced range of flower colors due to the lack of an essential gene or to the substrate specificity of a biosynthetic enzyme. Petunia does not produce orange flowers because dihydroflavonol 4-reductase (DFR) from this species, an enzyme involved in anthocyanin biosynthesis, inefficiently reduces dihydrokaempferol, the precursor to orange pelargonidin-type anthocyanins. The substrate specificity of DFR, however, has not been investigated at the molecular level. By ana

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|201 citations·2014
Two Ginseng UDP-Glycosyltransferases Synthesize Ginsenoside Rg3 and Rd
Suk‐Chae Jung, Woohyun Kim, Sung Chul Park, Jinkil Jeong, Myung Keun Park, Soohwan Lim, Yeon Lee, Wan‐Taek Im, Jun Hyoung Lee, Giltsu Choi, Sun Chang Kim
SJR Q1Plant and Cell Physiology

Ginseng is a medicinal herb that requires cultivation under shade conditions, typically for 4-6 years, before harvesting. The principal components of ginseng are ginsenosides, glycosylated tetracyclic terpenes. Dammarene-type ginsenosides are classified into two groups, protopanaxadiol (PPD) and protopanaxatriol (PPT), based on their hydroxylation patterns, and further diverge to diverse ginsenosides through differential glycosylation. Three early enzymes, dammarenediol-II synthase (DS) and two

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|187 citations·2012
Phytochrome B inhibits binding of phytochrome‐interacting factors to their target promoters
Eunae Park, Jeongmoo Park, Jung-Hyun Kim, Akira Nagatani, J. Clark Lagarias, Giltsu Choi
SJR Q1The Plant JournalOA

Phytochromes are red and far-red light receptors in plants that mediate critical responses to light throughout the lifecycle. They achieve this in part by targeting negatively acting bHLH transcription factors called phytochrome-interacting factors (PIFs) for degradation within the nucleus. However, it is not known whether protein degradation is the primary mechanism by which phytochromes inhibit these repressors of photomorphogenesis. Here, we use chromatin immunoprecipitation to show that phyB

Plant ScienceAgricultural and Biological Sciences
8
Article|154 citations·1999
Cymbidium hybrida dihydroflavonol 4‐reductase does not efficiently reduce dihydrokaempferol to produce orange pelargonidin‐type anthocyanins
Eric T. Johnson, Hankuil Yi, Byongchul Shin, Boung‐Jun Oh, Hyeonsook Cheong, Giltsu Choi
SJR Q1The Plant JournalOA

Some angiosperms are limited to a range of possible flower colors. This limitation can be due to the lack of an anthocyanin biosynthetic gene or to the substrate specificity of a key anthocyanin biosynthetic enzyme, dihydroflavonol 4-reductase (DFR). Cymbidium hybrida orchid flowers primarily produce cyanidin-type (pink to red) anthocyanins and lack the pelargonidin-type (orange to brick-red) anthocyanins. To investigate the underlying molecular mechanism of this flower color range, we cloned a

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|141 citations·2011
ABI3 and PIL5 Collaboratively Activate the Expression ofSOMNUSby Directly Binding to Its Promoter in ImbibedArabidopsisSeeds
Jeongmoo Park, Nayoung Lee, Woohyun Kim, Soohwan Lim, Giltsu Choi
SJR Q1The Plant CellOA

A previous study showed that SOMNUS (SOM), which encodes a C3H-type zinc finger protein, is a key negative regulator of seed germination that acts downstream of PHYTOCHROME INTERACTING FACTOR3-LIKE5 (PIL5). However, it was not determined if PIL5 is the sole regulator of SOM expression. Public microarray data suggest that the expression of SOM mRNA is regulated also by ABSCISIC ACID INSENSITIVE3 (ABI3), another key regulator of seed germination. By analyzing abi3 mutants and ABI3 overexpression l

Plant ScienceAgricultural and Biological Sciences
10
Article|132 citations·2002
AtMYB21, a gene encoding a flower‐specific transcription factor, is regulated by COP1
Byongchul Shin, Goh Choi, Goh Choi, Hankuil Yi, Seungchan Yang, Insook Cho, Jong-Hyun Kim, Seunghee Lee, Nam‐Chon Paek, Jae‐Hong Kim, Pill‐Soon Song, Giltsu Choi
SJR Q1The Plant Journal

Light is an important environmental signal that governs plant growth and development. One important light-signalling component involved in plant light responses is COP1. The pleiotropic phenotypes of the cop1 mutant suggest that COP1 regulates not only photomorphogenesis, but also other developmental processes. We investigated the role of COP1 by identifying genes that are regulated by COP1. We report that AtMYB21, a gene encoding a flower-specific transcription factor, is ectopically expressed

Plant ScienceAgricultural and Biological Sciences
11
Review|128 citations·2016
Phytochrome-interacting factor from Arabidopsis to liverwort
Nayoung Lee, Giltsu Choi
SJR Q1Current Opinion in Plant Biology
Plant ScienceAgricultural and Biological Sciences
12
Article|114 citations·2019
PHYTOCHROME INTERACTING FACTOR8 Inhibits Phytochrome A-Mediated Far-Red Light Responses in Arabidopsis
Jeonghwa Oh, Eunae Park, Kijong Song, Gabyong Bae, Giltsu Choi
SJR Q1The Plant CellOA

) PIFs, whose putative orthologs are conserved in other plant species. PIF8 possesses a bHLH motif and an active phytochrome B motif but not an active phytochrome A motif. Consistent with this motif composition, PIF8 binds to G-box elements and interacts with the Pfr form of phyB but only very weakly, if at all, with that of phyA. PIF8 differs, however, from other PIFs in its protein accumulation pattern and functional roles in different light conditions. First, PIF8 inhibits phyA-induced seed g

Plant ScienceAgricultural and Biological Sciences
13
Article|90 citations·2013
HONSU, a Protein Phosphatase 2C, Regulates Seed Dormancy by Inhibiting ABA Signaling in Arabidopsis
Woohyun Kim, Yeon Lee, Jeongmoo Park, Nayoung Lee, Giltsu Choi
SJR Q1Plant and Cell PhysiologyOA

Seed dormancy, a seed status that prohibits germination even in the presence of inductive germination signals, is a poorly understood process. To identify molecular components that regulate seed dormancy, we screened T-DNA insertion lines and identified a mutant designated honsu (hon). HON loss-of-function mutants display deep seed dormancy, whereas HON-overexpressing lines display shallow seed dormancy. HON encodes a seed-specific group A phosphatase 2C (PP2C) and is one of the major negative r

Plant ScienceAgricultural and Biological Sciences
14
Article|87 citations·2011
Phytochromes inhibit hypocotyl negative gravitropism by regulating the development of endodermal amyloplasts through phytochrome-interacting factors
Keunhwa Kim, Jieun Shin, Sang Hee Lee, Hee‐Seok Kweon, Julin Maloof, Giltsu Choi
SJR Q1Proceedings of the National Academy of SciencesOA

Phytochromes are red and far-red light photoreceptors that regulate various aspects of plant development. One of the less-understood roles of phytochromes is the inhibition of hypocotyl negative gravitropism, which refers to the loss of hypocotyl gravitropism and resulting random growth direction in red or far-red light. This light response allows seedlings to curve toward blue light after emergence from the soil and enhances seedling establishment in the presence of mulch. Phytochromes inhibit

Plant ScienceAgricultural and Biological Sciences
15
Article|81 citations·2023
Phytochrome B photobodies are comprised of phytochrome B and its primary and secondary interacting proteins
Chanhee Kim, Yongmin Kwon, Jaehoon Jeong, Minji Kang, Ga Seul Lee, Jeong Hee Moon, Hyo‐Jun Lee, Youn‐Il Park, Giltsu Choi
SJR Q1Nature CommunicationsOA

Phytochrome B (phyB) is a plant photoreceptor that forms a membraneless organelle called a photobody. However, its constituents are not fully known. Here, we isolated phyB photobodies from Arabidopsis leaves using fluorescence-activated particle sorting and analyzed their components. We found that a photobody comprises ~1,500 phyB dimers along with other proteins that could be classified into two groups: The first includes proteins that directly interact with phyB and localize to the photobody w

Plant ScienceAgricultural and Biological Sciences

Research Areas

Plant ScienceMolecular BiologyCellular and Molecular NeuroscienceRenewable Energy, Sustainability and the EnvironmentPhysiologyAerospace Engineering

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