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최성화 교수

Sung-hwa Choi

서울대학교 생명과학부 · 농업·생명과학

연구실 소개

최성화 교수의 연구실은 식물에서의 스테로이드 호르몬인 브라시노스테로이드(BR) 생합성 및 신호전달 경로를 중심으로 연구를 진행하고 있습니다. 특히 BR 생합성에 관여하는 유전자들(예: DWF4, DWF5, DWF7 등)의 기능 규명과, 이들의 분자적 기전을 밝혀내는 데 초점을 맞추고 있으며, 유전자 기반의 돌연변이 분석과 대사물질 추적 기법을 융합한 정밀한 분석을 수행합니다. 또한 BR 수용체 및 신호전달 단백질의 기능을 규명함으로써 식물 생장 조절 메커니즘을 종합적으로 이해하고자 합니다.

브라시노스테로이드유전자 기능 분석스테로이드 생합성식물 생장 조절대사물질 추적

연구 현황

논문 수
125
총 인용 수
7,834
최근 5년 논문
17
주요 분야
농업·생명과학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
17총합
2019
2021
2022
2023
2024
5개년 연도별 피인용 수
279총합
20192021202220232024

주요 논문

15
1
논문|인용수 488·1998
The DWF4 Gene of Arabidopsis Encodes a Cytochrome P450 That Mediates Multiple 22α-Hydroxylation Steps in Brassinosteroid Biosynthesis
Sunghwa Choe, Brian P. Dilkes, Shozo Fujioka, Suguru Takatsuto, Akira Sakurai, Kenneth A. Feldmann
SJR Q1The Plant CellOA

dwarf4 (dwf4) mutants of Arabidopsis display a dwarfed phenotype due to a lack of cell elongation. Dwarfism could be rescued by the application of brassinolide, suggesting that DWF4 plays a role in brassinosteroid (BR) biosynthesis. The DWF4 locus is defined by four mutant alleles. One of these is the result of a T-DNA insertion. Plant DNA flanking the insertion site was cloned and used as a probe to isolate the entire DWF4 gene. Sequence analysis revealed that DWF4 encodes a cytochrome P450 mon

Plant ScienceAgricultural and Biological Sciences
2
논문|인용수 342·2001
Overexpression of DWARF4 in the brassinosteroid biosynthetic pathway results in increased vegetative growth and seed yield in Arabidopsis
Sunghwa Choe, Shozo Fujioka, Takahiro Noguchi, Suguru Takatsuto, Shigeo Yoshida, Kenneth A. Feldmann
SJR Q1The Plant JournalOA

Plants unable to synthesize or perceive brassinosteroids (BRs) are dwarfs. Arabidopsis dwf4 was shown to be defective in a steroid 22alpha hydroxylase (CYP90B1) step that is the putative rate-limiting step in the BR biosynthetic pathway. To better understand the role of DWF4 in BR biosynthesis, transgenic Arabidopsis plants ectopically overexpressing DWF4 (AOD4) were generated, using the cauliflower mosaic virus 35S promoter, and their phenotypes were characterized. The hypocotyl length of both

Plant ScienceAgricultural and Biological Sciences
3
논문|인용수 255·1999
The Arabidopsis dwarf1 Mutant Is Defective in the Conversion of 24-Methylenecholesterol to Campesterol in Brassinosteroid Biosynthesis1
Sunghwa Choe, Brian P. Dilkes, Brian D. Gregory, Amanda S. Ross, Heng Yuan, Takahiro Noguchi, Shozo Fujioka, Suguru Takatsuto, Atsushi Tanaka, Shigeo Yoshida, Frans E. Tax, Kenneth A. Feldmann
SJR Q1PLANT PHYSIOLOGYOA

Since the isolation and characterization of dwarf1-1 (dwf1-1) from a T-DNA insertion mutant population, phenotypically similar mutants, including deetiolated2 (det2), constitutive photomorphogenesis and dwarfism (cpd), brassinosteroid insensitive1 (bri1), and dwf4, have been reported to be defective in either the biosynthesis or the perception of brassinosteroids. We present further characterization of dwf1-1 and additional dwf1 alleles. Feeding tests with brassinosteroid-biosynthetic intermedia

Plant ScienceAgricultural and Biological Sciences
4
논문|인용수 239·1999
The Arabidopsis dwf7/ste1 mutant is defective in the delta7 sterol C-5 desaturation step leading to brassinosteroid biosynthesis.
Sunghwa Choe, Takahiro Noguchi, Shozo Fujioka, Suguru Takatsuto, Christophe P. Tissier, Brian D. Gregory, Amanda S. Ross, Atsushi Tanaka, Shigeo Yoshida, Frans E. Tax, Kenneth A. Feldmann
PubMedOA

Lesions in brassinosteroid (BR) biosynthetic genes result in characteristic dwarf phenotypes in plants. Understanding the regulation of BR biosynthesis demands continued isolation and characterization of mutants corresponding to the genes involved in BR biosynthesis. Here, we present analysis of a novel BR biosynthetic locus, dwarf7 (dwf7). Feeding studies with BR biosynthetic intermediates and analysis of endogenous levels of BR and sterol biosynthetic intermediates indicate that the defective

Plant ScienceAgricultural and Biological Sciences
5
논문|인용수 191·2000
Lesions in the sterol Δ7 reductase gene of Arabidopsis cause dwarfism due to a block in brassinosteroid biosynthesis
Sunghwa Choe, Atsushi Tanaka, Takahiro Noguchi, Shozo Fujioka, Suguru Takatsuto, Amanda S. Ross, Frans E. Tax, Shigeo Yoshida, Kenneth A. Feldmann
SJR Q1The Plant JournalOA

The brassinosteroid (BR) biosynthetic pathway, and the sterol pathway which is prerequisite to the BR pathway, are rapidly being characterized because of the availability of a large number of characteristic dwarf mutants in Arabidopsis. Here we show that the Arabidopsis dwarf5 mutants are disrupted in a sterol Delta7 reduction step. dwf5 plants display the characteristic dwarf phenotype typical of other BR mutants. This phenotype includes small, round, dark-green leaves, and short stems, pedicel

Plant ScienceAgricultural and Biological Sciences
6
논문|인용수 191·2002
Arabidopsis Brassinosteroid-Insensitivedwarf12Mutants Are Semidominant and Defective in a Glycogen Synthase Kinase 3β-Like Kinase
Sunghwa Choe, Robert J. Schmitz, Shozo Fujioka, Suguru Takatsuto, Mi‐Ok Lee, Shigeo Yoshida, Kenneth A. Feldmann, Frans E. Tax
SJR Q1PLANT PHYSIOLOGYOA

Mutants defective in the biosynthesis or signaling of brassinosteroids (BRs), plant steroid hormones, display dwarfism. Loss-of-function mutants for the gene encoding the plasma membrane-located BR receptor BRI1 are resistant to exogenous application of BRs, and characterization of this protein has contributed significantly to the understanding of BR signaling. We have isolated two new BR-insensitive mutants (dwarf12-1D and dwf12-2D) after screening Arabidopsis ethyl methanesulfonate mutant popu

Plant ScienceAgricultural and Biological Sciences
7
논문|인용수 166·2011
Auxin stimulates DWARF4 expression and brassinosteroid biosynthesis in Arabidopsis
Yuhee Chung, Puna Maya Maharjan, Oksun Lee, Shozo Fujioka, Suyoun Jang, Bokyung Kim, Suguru Takatsuto, Masafumi Tsujimoto, Hobang Kim, Seoae Cho, Taesung Park, Hyunwoo Cho
SJR Q1The Plant Journal

Brassinosteroids (BRs) are growth-promoting steroidal hormones. Despite the importance of BRs in plant biology, the signal that initiates BR biosynthesis remains unknown. Among the enzymes involved in BR biosynthesis in Arabidopsis (Arabidopsis thaliana), DWARF4 catalyzes the rate-determining step. Through both the histochemical analysis of DWF4pro:GUS plants and the direct measurement of endogenous BR content, we discovered that BR biosynthesis is stimulated by auxin. When DWF4pro:GUS was subje

Plant ScienceAgricultural and Biological Sciences
8
논문|인용수 136·2012
Propiconazole Is a Specific and Accessible Brassinosteroid (BR) Biosynthesis Inhibitor for Arabidopsis and Maize
Thomas Hartwig, Claudia Corvalán, Norman B. Best, Joshua S. Budka, Jia‐Ying Zhu, Sunghwa Choe, Burkhard Schulz
SJR Q1PLoS ONEOA

Brassinosteroids (BRs) are steroidal hormones that play pivotal roles during plant development. In addition to the characterization of BR deficient mutants, specific BR biosynthesis inhibitors played an essential role in the elucidation of BR function in plants. However, high costs and limited availability of common BR biosynthetic inhibitors constrain their key advantage as a species-independent tool to investigate BR function. We studied propiconazole (Pcz) as an alternative to the BR inhibito

Plant ScienceAgricultural and Biological Sciences
9
논문|인용수 106·2014
Darkness and gulliver2/phyB mutation decrease the abundance of phosphorylated BZR1 to activate brassinosteroid signaling in Arabidopsis
Bokyung Kim, Yu Jeong Jeong, Claudia Corvalán, Shozo Fujioka, Seoae Cho, Taesung Park, Sunghwa Choe
SJR Q1The Plant JournalOA

Light is essential for plant survival; as such, plants flexibly adjust their growth and development to best harvest light energy. Brassinosteroids (BRs), plant growth-promoting steroid hormones, are essential for this plasticity of development. However, the precise mechanisms underlying BR-mediated growth under different light conditions remain largely unknown. Here, we show that darkness increases the activity of the BR-specific transcription factor, BZR1, by decreasing the phosphorylated (inac

Plant ScienceAgricultural and Biological Sciences
10
논문|인용수 93·2008
Castasterone is a likely end product of brassinosteroid biosynthetic pathway in rice
Bo Kyung Kim, Shozo Fujioka, Suguru Takatsuto, Masafumi Tsujimoto, Sunghwa Choe
SJR Q2Biochemical and Biophysical Research Communications
Plant ScienceAgricultural and Biological Sciences
11
논문|인용수 83·1999
The Arabidopsis dwf7/ste1 Mutant Is Defective in the Δ7 Sterol C-5 Desaturation Step Leading to Brassinosteroid Biosynthesis
Sunghwa Choe, Takahiro Noguchi, Shozo Fujioka, Suguru Takatsuto, Christophe P. Tissier, Brian D. Gregory, Amanda S. Ross, Atsushi Tanaka, Shigeo Yoshida, Frans E. Tax, Kenneth A. Feldmann
SJR Q1The Plant CellOA

Lesions in brassinosteroid (BR) biosynthetic genes result in characteristic dwarf phenotypes in plants. Understanding the regulation of BR biosynthesis demands continued isolation and characterization of mutants corresponding to the genes involved in BR biosynthesis. Here, we present analysis of a novel BR biosynthetic locus, dwarf7 (dwf7). Feeding studies with BR biosynthetic intermediates and analysis of endogenous levels of BR and sterol biosynthetic intermediates indicate that the defective

Plant ScienceAgricultural and Biological Sciences
12
논문|인용수 73·2014
Antagonistic Regulation of Arabidopsis Growth by Brassinosteroids and Abiotic Stresses
Yuhee Chung, Soon Il Kwon, Sunghwa Choe
SJR Q1Molecules and CellsOA

To withstand ever-changing environmental stresses, plants are equipped with phytohormone-mediated stress resistance mechanisms. Salt stress triggers abscisic acid (ABA) signaling, which enhances stress tolerance at the expense of growth. ABA is thought to inhibit the action of growth-promoting hormones, including brassinosteroids (BRs). However, the regulatory mechanisms that coordinate ABA and BR activity remain to be discovered. We noticed that ABA-treated seedlings exhibited small, round leav

Plant ScienceAgricultural and Biological Sciences
13
리뷰|인용수 73·2021
Plant-Based COVID-19 Vaccines: Current Status, Design, and Development Strategies of Candidate Vaccines
Puna Maya Maharjan, Sunghwa Choe
SJR Q1VaccinesOA

The prevalence of the coronavirus disease 2019 (COVID-19) pandemic in its second year has led to massive global human and economic losses. The high transmission rate and the emergence of diverse SARS-CoV-2 variants demand rapid and effective approaches to preventing the spread, diagnosing on time, and treating affected people. Several COVID-19 vaccines are being developed using different production systems, including plants, which promises the production of cheap, safe, stable, and effective vac

BiotechnologyBiochemistry, Genetics and Molecular Biology
14
논문|인용수 71·2010
Arabidopsis brassinosteroid biosynthetic mutant dwarf7-1exhibits slower rates of cell division and shoot induction
Jinyeong Cheon, So‐Young Park, Burkhard Schulz, Sunghwa Choe
SJR Q1BMC Plant BiologyOA

BACKGROUND: Plant growth depends on both cell division and cell expansion. Plant hormones, including brassinosteroids (BRs), are central to the control of these two cellular processes. Despite clear evidence that BRs regulate cell elongation, their roles in cell division have remained elusive. RESULTS: Here, we report results emphasizing the importance of BRs in cell division. An Arabidopsis BR biosynthetic mutant, dwarf7-1, displayed various characteristics attributable to slower cell division

Plant ScienceAgricultural and Biological Sciences
15
논문|인용수 70·2006
Brassinosteroid biosynthesis and inactivation
Sunghwa Choe
SJR Q1Physiologia PlantarumOA

The term brassinosteroids (BRs) refers to the growth‐promoting plant steroidal hormones. Various developmental programs including but not limited to cell elongation, stress tolerance, and skoto‐/photo‐morphogenesis are controlled by subnanomolar concentrations of BRs. Accordingly, BR mutants that are defective in BR biosynthetic or signaling pathways usually display dwarfism. Characterization of numerous BR dwarf mutants isolated from Arabidopsis , pea, tomato, and rice greatly contributed to ou

Plant ScienceAgricultural and Biological Sciences

대표 연구 분야

Plant ScienceMolecular BiologyBiotechnologyCellular and Molecular NeuroscienceImmunologyRheumatology

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