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미나리아재비속 식물의 기공 발달 기작 연구

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dc.contributor.advisor이일하-
dc.contributor.author경진슬-
dc.date.accessioned2017-07-19T09:08:57Z-
dc.date.available2017-07-19T09:08:57Z-
dc.date.issued2016-02-
dc.identifier.other000000132867-
dc.identifier.urihttps://hdl.handle.net/10371/131601-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 생명과학부, 2016. 2. 이일하.-
dc.description.abstractSeveral aquatic or wetland plants including R. trichophyllus, have stomata mostly on the adaxial side. Such an adaxial-side-specific distribution of stomata is named epi-stomy. Epi-stomy is an adaptive strategy for wetland plants because stomata are the entry sites where pathogens infect plants and pathogens invade plants more easily if stomata were located at abaxial side. The molecular mechanism underlying epi-stomy is unknown yet. I hypothesized that epi-stomy in R. trichophyllus is mediated by auxin and leaf polarity genes. Here, I compared the stomatal densities and distributions of R. trichophyllus and 3 of its relative species. R. trichopyllus and R. sceleratus are epi-stomatous while R. japonicus is hypo-stomatous. Then I treated auxin and auxin transport inhibitor, NPA, to R. trichophyllus. Stomatal distribution was significantly altered after the NPA treatment. To elucidate the molecular mechanism regulating stomatal distribution, I cloned R. trichophyllus genes which regulate stomatal development, including RtSTO and RtSPCH. Then I analyzed the spatial expression pattern of RtSTO and RtSPCH. Both of the genes are expressed specifically on adaxial side. In addition, RtSTO is negatively regulated by auxin. In addition, A. thaliana transformants overexpressing leaf polarity genes of R. trichophyllus showed altered stomatal density and distribution. Based on those findings, I concluded that (1) Auxin and leaf polarity genes function as signals with spatial information (2) Such patial signals induce the differential expression of RtSTO and RtSPCH and epi-stomy.-
dc.description.tableofcontents1. INTRODUCTION 1
1.1 Molecular mechanism regulating stomatal development 1
1.2 Stomatal distribution on adaxial and abaxial sides 2
1.3 Molecular mechanism regulating leaf polarity 4
1.4 Ranunculus as the study material 5
1.5 Purpose of the study 5

2. MATERIAL AND METHODS 7
2.1 Plant materials and growth condition 7
2.2 Observation of epidermis and measurement of stomatal density 9
2.3 Hormone treatment 9
2.4 RNA sequencing and gene cloning 10
2.5 in-situ RNA hybridization 11
2.6 RNA extraction and qRT-PCR 11
2.7 Construction of transgenic lines 12
2.8 Phylogenetic analyses 12

3. RESULTS 13
3.1 Stomatal distributions of Ranunculus species are diverse 13
3.2 Disruption of auxin distribution alters stomatal distribution 16
3.3 Genes regulating stomatal development were cloned from R. trichophyllus 19
3.4 Genes inducing stomatal development are expressed higher on adaxial side 23
3.5 Auxin down-regulates genes inducing stomatal development 25
3.6 Overexpression of leaf polarity gene alters stomatal density and distribution 30

4. DISCUSSION 33

REFERENCES 38

국문 초록 47
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dc.formatapplication/pdf-
dc.format.extent13464312 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectstomatal development-
dc.subjectleaf polarity-
dc.subjectSPEECHLESS-
dc.subjectSTOMAGEN-
dc.subject.ddc570-
dc.title미나리아재비속 식물의 기공 발달 기작 연구-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pages48-
dc.contributor.affiliation자연과학대학 생명과학부-
dc.date.awarded2016-02-
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