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애기장대 히스톤 탈아세틸화 효소 HDA9의 개화 및 발아 관련 기능에 대한 연구 : A Study on the Role of Histone Deacetylase HDA9 in Arabidopsis Flowering and Germination

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dc.contributor.advisor노유선-
dc.contributor.author강민정-
dc.date.accessioned2017-07-14T00:51:15Z-
dc.date.available2018-07-04T02:22:52Z-
dc.date.issued2016-02-
dc.identifier.other000000132142-
dc.identifier.urihttps://hdl.handle.net/10371/121435-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 생명과학부 생명과학 전공, 2016. 2. 노유선.-
dc.description.abstractPosttranslational acetylation of histones is reversibly regulated by histone deacetylases (HDACs). Despite the evident significances of HDACs in Arabidopsis development, the biological roles and underlying molecular mechanisms of many HDACs are yet to be elucidated. In this study, I revealed the biological role of the RPD3/HDA1-class histone deacetylase HDA9 in resetting histone acetylation levels during active transcription to maintain proper transcription activity in two major phase transition of plants-
dc.description.abstractseed germination and flowering.
Loss-of-function in HDA9 flowered early under non-inductive short-day (SD) condition and showed increased expression of the floral integrator, FT and floral activator, AGL19. The hda9 mutation increased histone H3 acetylation and RNA polymerase II occupancy at AGL19 chromatin but not FT during active transcription. In addition, HDA9 directly targeted AGL19, and AGL19 expression was higher in SD than LD condition. The agl19 mutation is epistatic to the hda9 mutation, masking the early flowering and increased FT expression of hda9. Taken together, my data indicates that HDA9 prevents precocious flowering in SD by curbing the hyper-activation of AGL19, an upstream activator of FT, through resetting local chromatin environment.
Epigenetic regulation network through HAT and HDAC is known to play crucial roles in seed development. Timing of seed germination is controlled by various environmental factors in order to initiate a successful new life cycle under favorable environment. Light is the most critical environmental factor to promote seed germination. Light-induced germination process involves the perception of light mainly by phytochrome B (phyB) and degradation of the germination repressor PHYTOCHROME INTERACTING FACTOR (PIF1) resulted from its interaction with phyB.
Through this study, I found out that HDA9 adds a new layer of regulation for phyB-dependent germination process. Loss-of-HDA9 activity caused rapid germination after red-light pulse treatment and under continuous white light. The expressin of HECs, previously known repressors of PIF1 transcription activity was also increased in the hda9 mutant. Epistatic analysis between the hda9 mutant and hec1hec2 RNAi showed that rapid seed germination of the hda9 mutant was caused by the increased HECs expression. Histone H3 acetylation level and RNA polymerase II occupancy at HECs were more elevated in hda9-1 than in wt after red light pulse but not after far-red light pulse. The direct association of HDA9 with HECs chromatin was also observed after red light pulse but not after far-red light pulse. Furthermore, HDA9 also affect the expression of GA-INSENSITIVE (GAI) and REPRESSOR OF GA1-3 (RGA/RGA1), downstream target genes of PIF1. Taken together, my results indicate that HDA9 plays a role in the prevention of the hyper light-sensitive germination by inhibiting the hyper-activation of HECs transcription by light through deacetylating HEC chromatin during active transcription. Thus, HDA9 acts as a fine-tuning mechanism of phyB-dependent germination ensuring the beginning of germination under proper light condition.
In conclusion, throughout my research, I focused on the identification of the novel roles of HDA9 during seed germination and flowering. The role of HDA9 in transcription, unlike the conventional idea of HDACs is to modulate the transcription activity of target chromatin (AGL19 and HECs) by resetting the landscape of chromatin during active transcription.
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dc.description.tableofcontents1. Chapter I. General introduction 1
1. Epigenetics and gene regulation 2
1.1 Histone modification 2
1.1.1 Histone acetylation 4
1.1.2 Histone deacetylation 8
1.2 DNA methylation 14
1.3 ATP-dependent chromatin remodeling 16
1.4 RNA interference (RNAi) 19
2. Photoperiod regulates floral transition 22
2.1 Photoperiod and circadian rhythm 23
2.2 Vernalization pathway 26
2.3 Autonomous pathway 30
2.4 GA pathway 32
3. Light regulates seed germination 32
3.1 Light regulates phytochrome signaling 34
3.2 Phytochrome interacting factors (PIFs) 35
3.3 Phytochrome modulates PIF1 during seed germination 37
3.4 Light regulates GA pathway during seed germination 38
3.5 Light regulates ABA pathway 40

2. Chapter II. Repression of flowering in non-inductive photoperiod by the HDA9-AGL19-FT module in Arabidopsis 43
2.1 Abstract 44
2.2 Introduction 45
2.3 Material and methods 49
2.3.1 Plant materials and growth conditions 49
2.3.2 Histochemical β-glucuronidase (GUS) assay 49
2.3.3 Subcellular localization study 50
2.3.4 HDA9 complementation construct and HDA9:HA 50
2.3.5 Flowering time analysis 51
2.3.6 RT-PCR and RT-qPCR analyses 51
2.3.7 ChIP assay 52
2.4 Results 66
2.4.1 Isolation of an hda9 mutant 66
2.4.2 Spatial expression pattern and nuclear localization of HDA9 72
2.4.3 The hda9-1 mutation causes early flowering in SD 79
2.4.4 Loss of HDA9 affects the expression of FLC, MAF4, MAF5, and FT 83
2.4.5 HDA9 controls flowering mostly independently of FLC, MAF4, and MAF5 87
2.4.6 The expression of AGL19, a floral activator, is increased in hda9-1 91
2.4.7 HDA9 directly represses AGL19 transcription through histone deacetylation 97
2.4.8 HDA9 controls FT expression and flowering through AGL19 101
2.4.9 Loss of HDA9 increases the levels of AGL19 mRNA and H3Ac at AGL19 in vernalized seedlings 103
2.4.10 AGL19 is differentially expressed in different photoperiods 105
2.5 Discussion 108

3. Chapter III. HDA 9 plays a negative role in light-induced seed Germination 111
3.1 Abstract 112
3.2 Introduction 114
3.3 Material and methods 118
3.3.1 Plant materials and growth conditions 118
3.3.2 Light treatment and seed germination assay 118
3.3.3 Histochemical β-glucuronidase (GUS) assay 119
3.3.4 RNA extraction and RT-qPCR analysis 119
3.3.5 Protein extraction and western blot 120
3.3.6 Chromatin immunoprecipitation (ChIP) assay 122
3.4 Results 129
3.4.1 HDA9 negatively regulates the phyB- dependent promotion of seed germination 129
3.4.2 Expression of HDA9 is not affected by red light 135
3.4.3 Expression of HECATEs, positive regulators in seed germination, is increased by the hda9-1 mutation 137
3.4.4 HECATE expressions were enhanced in seed germination 139
3.4.5 HDA9 directly represses HECs transcription through histone deacetylation 144
3.4.6 HDA9 acts as an upstream regulator of HECs 148
3.4.7 GAI and RGA mRNAs are reduced by the hda9 mutation under red light regime 150
3.4.8 The pif1 mutation is epistatic to the hda9 mutation 154
3.4.9 HDA9 targeting to HFR1 is less clear 156
3.4.10 Proposed working model of HDA9-HEC-PIF1 regulatory module controlling the phyB-dependent seed germination 160
3.4.11 HECs are involved in controlling the light- dependent inhibition of hypocotyl elongation by HDA9 163
3.5 Discussion 165

References 168

Abstract in Korean 193
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dc.formatapplication/pdf-
dc.format.extent6111877 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjecthistone deacetylation-
dc.subjecthistone deacetylase (HDA9)-
dc.subjectHECATE (HEC)-
dc.subjectseed germination-
dc.subjectAGAMOUS-LIKE 19 (AGL19)-
dc.subjectflowering-
dc.subject.ddc570-
dc.title애기장대 히스톤 탈아세틸화 효소 HDA9의 개화 및 발아 관련 기능에 대한 연구-
dc.title.alternativeA Study on the Role of Histone Deacetylase HDA9 in Arabidopsis Flowering and Germination-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pagesxv,194-
dc.contributor.affiliation자연과학대학 생명과학부-
dc.date.awarded2016-02-
dc.embargo.terms2018-02-01-
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