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노유선 교수

Yoo-sun Noh

서울대학교 생명과학부 · 농업·생명과학

연구실 소개

노유선 교수의 연구실은 식물의 생장과 발달을 조절하는 분자 메커니즘, 특히 노화와 번식 시기 조절을 중심으로 한 유전자 조절 네트워크를 연구하고 있습니다. 특히 FLC 기반의 봄철 꽃 피우기 조절, 광주기와 저온에 의한 유전자 발현 조절, 그리고 병원균 저항성에서의 염색체 구조 조절 메커니즘을 다룹니다. 고해상도 세포내 분포 분석과 유전자 발현 프로파일링을 통해 식물의 생리적 반응을 분자 수준에서 규명하고 있습니다.

꽃 피우기 조절FLC 발현 조절염색체 구조 조절식물 면역 반응노화 관련 세포소기관

연구 현황

논문 수
48
총 인용 수
5,958
최근 5년 논문
8
주요 분야
농업·생명과학

연구 성과 추이

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

5개년 연도별 논문 게재 수
8총합
2021
2022
2023
2024
2026
5개년 연도별 피인용 수
144총합
20212022202320242026

주요 논문

15
1
논문|인용수 1,205·2004
The PLETHORA Genes Mediate Patterning of the Arabidopsis Root Stem Cell Niche
Mitsuhiro Aida, Dimitris Beis, Renze Heidstra, Viola Willemsen, Ikram Blilou, Carla Galinha, Laurent Nussaume, Yoo‐Sun Noh, Richard M. Amasino, Ben Scheres
SJR Q1CellOA
Plant ScienceAgricultural and Biological Sciences
2
논문|인용수 656·2000
Molecular aspects of leaf senescence
Betânia Ferraz Quirino, Yoo‐Sun Noh, Edward Himelblau, Richard M. Amasino
SJR Q1Trends in Plant ScienceOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
논문|인용수 373·1999
Identification of a promoter region responsible for the senescence-specific expression of SAG12
Yoo‐Sun Noh, Richard M. Amasino
SJR Q1Plant Molecular Biology
Plant ScienceAgricultural and Biological Sciences
4
논문|인용수 339·2005
Senescence‐associated vacuoles with intense proteolytic activity develop in leaves of Arabidopsis and soybean
Marisa S. Otegui, Yoo‐Sun Noh, Dana E. Martínez, Martín Vila Petroff, L. Andrew Staehelin, Richard M. Amasino, Juan J. Guiamét
SJR Q1The Plant JournalOA

Vacuolar compartments associated with leaf senescence and the subcellular localization of the senescence-specific cysteine-protease SAG12 (senescence-associated gene 12) were studied using specific fluorescent markers, the expression of reporter genes, and the analysis of high-pressure frozen/freeze-substituted samples. Senescence-associated vacuoles (SAVs) with intense proteolytic activity develop in the peripheral cytoplasm of mesophyll and guard cells in Arabidopsis and soybean. The vacuolar

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
논문|인용수 286·2003
PIE1 , an ISWI Family Gene, Is Required for FLC Activation and Floral Repression in Arabidopsis
Yoo‐Sun Noh, Richard M. Amasino
SJR Q1The Plant CellOA

Proper control of the floral transition is critical for reproductive success in flowering plants. In Arabidopsis, FLOWERING LOCUS C (FLC) is a floral repressor upon which multiple floral regulatory pathways converge. Mutations in PHOTOPERIOD-INDEPENDENT EARLY FLOWERING1 (PIE1) suppress the FLC-mediated delay of flowering as a result of the presence of FRIGIDA or of mutations in autonomous pathway genes. PIE1 is required for high levels of FLC expression in the shoot apex, but it is not required

Plant ScienceAgricultural and Biological Sciences
6
논문|인용수 186·2012
Control of Seed Germination by Light-Induced Histone Arginine Demethylation Activity
Jungnam Cho, Jee-Youn Ryu, Young‐Min Jeong, Jihye Park, Ji‐Joon Song, Richard M. Amasino, Bosl Noh, Yoo‐Sun Noh
SJR Q1Developmental CellOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
논문|인용수 175·2009
Repression of FLOWERING LOCUS T Chromatin by Functionally Redundant Histone H3 Lysine 4 Demethylases in Arabidopsis
Juhee Jeong, Hae-Ryong Song, Jonghyun Ko, Young‐Min Jeong, Young Eun Kwon, Jae Hong Seol, Richard M. Amasino, Bosl Noh, Yoo‐Sun Noh
SJR Q1PLoS ONEOA

FLOWERING LOCUS T (FT) plays a key role as a mobile floral induction signal that initiates the floral transition. Therefore, precise control of FT expression is critical for the reproductive success of flowering plants. Coexistence of bivalent histone H3 lysine 27 trimethylation (H3K27me3) and H3K4me3 marks at the FT locus and the role of H3K27me3 as a strong FT repression mechanism in Arabidopsis have been reported. However, the role of an active mark, H3K4me3, in FT regulation has not been add

Plant ScienceAgricultural and Biological Sciences
8
논문|인용수 153·2008
Resetting and regulation of FLOWERING LOCUS C expression during Arabidopsis reproductive development
Jean Choi, Y. Hyun, Min Jeong Kang, Hye In Yun, Jae‐Young Yun, Clare Lister, Caroline Dean, Richard M. Amasino, Bosl Noh, Yoo‐Sun Noh, Yeonhee Choi
SJR Q1The Plant JournalOA

The epigenetic regulation of the floral repressor Flowering Locus C (FLC) is one of the critical factors that determine flowering time in Arabidopsis thaliana. Although many FLC regulators, and their effects on FLC chromatin, have been extensively studied, the epigenetic resetting of FLC has not yet been thoroughly characterized. Here, we investigate the FLC expression during gametogenesis and embryogenesis using FLC::GUS transgenic plants and RNA analysis. Regardless of the epigenetic state in

Plant ScienceAgricultural and Biological Sciences
9
논문|인용수 149·2018
Epigenetic reprogramming by histone acetyltransferase HAG1/AtGCN5 is required for pluripotency acquisition in Arabidopsis
Ji Yun Kim, Woorim Yang, Joachim Forner, Jan U. Lohmann, Bosl Noh, Yoo‐Sun Noh
SJR Q1The EMBO JournalOA
Plant ScienceAgricultural and Biological Sciences
10
논문|인용수 112·2018
Salicylic acid-induced transcriptional reprogramming by the HAC–NPR1–TGA histone acetyltransferase complex in Arabidopsis
Hongshi Jin, Sun‐Mee Choi, Min‐Jeong Kang, Se-Hun Yun, Dong-Jin Kwon, Yoo‐Sun Noh, Bosl Noh
SJR Q1Nucleic Acids ResearchOA

Plant immunity depends on massive expression of pathogenesis-related genes (PRs) whose transcription is de-repressed by pathogen-induced signals. Salicylic acid (SA) acts as a major signaling molecule in plant immunity and systemic acquired resistance triggered by bacterial or viral pathogens. SA signal results in the activation of the master immune regulator, Nonexpressor of pathogenesis-related genes 1 (NPR1), which is thought to be recruited by transcription factors such as TGAs to numerous d

Plant ScienceAgricultural and Biological Sciences
11
논문|인용수 99·2006
Role of plant CBP/p300‐like genes in the regulation of flowering time
Soon‐Ki Han, Ju‐Dong Song, Yoo‐Sun Noh, Bosl Noh
SJR Q1The Plant JournalOA

CREB-binding protein (CBP) and its homolog p300 possess histone acetyltransferase activity and function as key transcriptional co-activators in the regulation of gene expression that controls differentiation and development in animals. However, the role of CBP/p300-like genes in plants has not yet been elucidated. Here, we show that Arabidopsis CBP/p300-like genes promote flowering by affecting the expression of a major floral repressor FLOWERING LOCUS C (FLC). Although animal CBP and p300 gener

Plant ScienceAgricultural and Biological Sciences
12
논문|인용수 97·2010
Growth habit determination by the balance of histone methylation activities in Arabidopsis
Jonghyun Ko, Irina Mitina, Yosuke Tamada, Y. Hyun, Yeonhee Choi, Richard M. Amasino, Bosl Noh, Yoo‐Sun Noh
SJR Q1The EMBO JournalOA
Plant ScienceAgricultural and Biological Sciences
13
논문|인용수 97·1999
Regulation of developmental senescence is conserved between Arabidopsis and Brassica napus
Yoo‐Sun Noh, Richard M. Amasino
SJR Q1Plant Molecular Biology
Plant ScienceAgricultural and Biological Sciences
14
논문|인용수 91·2014
Repression of flowering under a noninductive photoperiod by the HDA9‐AGL19‐FT module in Arabidopsis
Min‐Jeong Kang, Hongshi Jin, Yoo‐Sun Noh, Bosl Noh
SJR Q1New PhytologistOA

Posttranslational acetylation of histones is reversibly regulated by histone deacetylases (HDACs). Despite the evident significance of HDACs in Arabidopsis development, the biological roles and underlying molecular mechanisms of many HDACs are yet to be elucidated. By a reverse-genetic approach, we isolated an hda9 mutant and performed phenotypic analyses on it. In order to address the role of HDA9 in flowering, genetic, molecular, and biochemical approaches were employed. hda9 flowered early un

Plant ScienceAgricultural and Biological Sciences
15
논문|인용수 57·2012
Rhythmic Oscillation of Histone Acetylation and Methylation at the Arabidopsis Central Clock Loci
Hae-Ryong Song, Yoo‐Sun Noh
SJR Q1Molecules and CellsOA
Plant ScienceAgricultural and Biological Sciences

대표 연구 분야

Plant ScienceMolecular Biology

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