請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/103087完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 林詩舜 | zh_TW |
| dc.contributor.advisor | Shih-Shun Lin | en |
| dc.contributor.author | 郭家齡 | zh_TW |
| dc.contributor.author | Jia-Ling Guo | en |
| dc.date.accessioned | 2026-08-04T09:06:33Z | - |
| dc.date.available | 2026-08-04 | - |
| dc.date.copyright | 2026-07-30 | - |
| dc.date.issued | 2026 | - |
| dc.date.submitted | 2026-07-21 | - |
| dc.identifier.citation | Axtell, M. J., & Bowman, J. L. (2008). Evolution of plant microRNAs and their targets. Trends Plant Sci, 13(7), 343-349. https://doi.org/10.1016/j.tplants.2008.03.009
Axtell, M. J., Snyder, J. A., & Bartel, D. P. (2007). Common functions for diverse small RNAs of land plants. Plant Cell, 19(6), 1750-1769. https://doi.org/10.1105/tpc.107.051706 Bartel, D. P. (2004). MicroRNAs: genomics, biogenesis, mechanism, and function. Cell, 116(2), 281-297. https://doi.org/10.1016/s0092-8674(04)00045-5 Baumberger, N., & Baulcombe, D. C. (2005). Arabidopsis ARGONAUTE1 is an RNA Slicer that selectively recruits microRNAs and short interfering RNAs. Proc Natl Acad Sci U S A, 102(33), 11928-11933. https://doi.org/10.1073/pnas.0505461102 Bowman, J. L. (2016). A Brief History of Marchantia from Greece to Genomics. Plant Cell Physiol, 57(2), 210-229. https://doi.org/10.1093/pcp/pcv044 Chen, C., Li, J., Feng, J., Liu, B., Feng, L., Yu, X., Li, G., Zhai, J., Meyers, B. C., & Xia, R. (2021). sRNAanno-a database repository of uniformly annotated small RNAs in plants. Hortic Res, 8(1), 45. https://doi.org/10.1038/s41438-021-00480-8 Chen, X. (2005). MicroRNA biogenesis and function in plants. FEBS Lett, 579(26), 5923-5931. https://doi.org/10.1016/j.febslet.2005.07.071 Cuperus, J. T., Fahlgren, N., & Carrington, J. C. (2011). Evolution and functional diversification of MIRNA genes. Plant Cell, 23(2), 431-442. https://doi.org/10.1105/tpc.110.082784 Dai, X., Zhuang, Z., & Zhao, P. X. (2018). psRNATarget: a plant small RNA target analysis server (2017 release). Nucleic Acids Res, 46(W1), W49-W54. https://doi.org/10.1093/nar/gky316 Fahlgren, N., Howell, M. D., Kasschau, K. D., Chapman, E. J., Sullivan, C. M., Cumbie, J. S., Givan, S. A., Law, T. F., Grant, S. R., Dangl, J. L., & Carrington, J. C. (2007). High-throughput sequencing of Arabidopsis microRNAs: evidence for frequent birth and death of MIRNA genes. PLoS One, 2(2), e219. https://doi.org/10.1371/journal.pone.0000219 Flores-Sandoval, E., Eklund, D. M., & Bowman, J. L. (2015). A Simple Auxin Transcriptional Response System Regulates Multiple Morphogenetic Processes in the Liverwort Marchantia polymorpha. PLoS Genet, 11(5), e1005207. https://doi.org/10.1371/journal.pgen.1005207 Futagami, K., Tsuzuki, M., Yoshida, M., & Watanabe, Y. (2025). MpmiR319 promotes gemma/gemma cup formation in the liverwort Marchantia polymorpha. J Exp Bot, 76(12), 3378-3389. https://doi.org/10.1093/jxb/eraf148 Hong, S. F., Wei, W. L., Pan, Z. J., Yu, J. Z., Cheng, S., Hung, Y. L., Tjita, V., Wang, H. C., Komatsu, A., Nishihama, R., Kohchi, T., Chen, H. M., Chen, W. C., Lo, J. C., Chiu, Y. H., Yang, H. C., Lu, M. Y., Liu, L. D., & Lin, S. S. (2024). Molecular Insights into MpAGO1 and Its Regulatory miRNA, miR11707, in the High-Temperature Acclimation of Marchantia polymorpha. Plant Cell Physiol, 65(9), 1414-1433. https://doi.org/10.1093/pcp/pcae080 Imran, M., Liu, T., Wang, Z., Wang, M., Liu, S., Gao, X., Wang, A., Liu, S., Tian, Z., & Zhang, M. (2022). Evolutionary conservation of nested MIR159 structural microRNA genes and their promoter characterization in Arabidopsis thaliana. Front Plant Sci, 13, 948751. https://doi.org/10.3389/fpls.2022.948751 Ishizaki, K., Nishihama, R., Ueda, M., Inoue, K., Ishida, S., Nishimura, Y., Shikanai, T., & Kohchi, T. (2015). Development of Gateway Binary Vector Series with Four Different Selection Markers for the Liverwort Marchantia polymorpha. PLoS One, 10(9), e0138876. https://doi.org/10.1371/journal.pone.0138876 Klimesová, J., & Klimes, L. (2007). Bud banks and their role in vegetative regeneration -: A literature review and proposal for simple classification and assessment. Perspectives in Plant Ecology Evolution and Systematics, 8(3), 115-129. https://doi.org/10.1016/j.ppees.2006.10.002 Koi, S., Hisanaga, T., Sato, K., Shimamura, M., Yamato, K. T., Ishizaki, K., Kohchi, T., & Nakajima, K. (2016). An Evolutionarily Conserved Plant RKD Factor Controls Germ Cell Differentiation. Curr Biol, 26(13), 1775-1781. https://doi.org/10.1016/j.cub.2016.05.013 Kozomara, A., Birgaoanu, M., & Griffiths-Jones, S. (2019). miRBase: from microRNA sequences to function. Nucleic Acids Res, 47(D1), D155-D162. https://doi.org/10.1093/nar/gky1141 Kubota, A., Ishizaki, K., Hosaka, M., & Kohchi, T. (2013). Efficient Agrobacterium-mediated transformation of the liverwort Marchantia polymorpha using regenerating thalli. Biosci Biotechnol Biochem, 77(1), 167-172. https://doi.org/10.1271/bbb.120700 Li, Y., Li, C., Ding, G., & Jin, Y. (2011). Evolution of MIR159/319 microRNA genes and their post-transcriptional regulatory link to siRNA pathways. BMC Evol Biol, 11, 122. https://doi.org/10.1186/1471-2148-11-122 Lin, P. C., Lu, C. W., Shen, B. N., Lee, G. Z., Bowman, J. L., Arteaga-Vazquez, M. A., Liu, L. Y., Hong, S. F., Lo, C. F., Su, G. M., Kohchi, T., Ishizaki, K., Zachgo, S., Althoff, F., Takenaka, M., Yamato, K. T., & Lin, S. S. (2016). Identification of miRNAs and Their Targets in the Liverwort Marchantia polymorpha by Integrating RNA-Seq and Degradome Analyses. Plant Cell Physiol, 57(2), 339-358. https://doi.org/10.1093/pcp/pcw020 Mallory, A. C., Reinhart, B. J., Jones-Rhoades, M. W., Tang, G., Zamore, P. D., Barton, M. K., & Bartel, D. P. (2004). MicroRNA control of PHABULOSA in leaf development: importance of pairing to the microRNA 5' region. EMBO J, 23(16), 3356-3364. https://doi.org/10.1038/sj.emboj.7600340 Mi, S., Cai, T., Hu, Y., Chen, Y., Hodges, E., Ni, F., Wu, L., Li, S., Zhou, H., Long, C., Chen, S., Hannon, G. J., & Qi, Y. (2008). Sorting of small RNAs into Arabidopsis argonaute complexes is directed by the 5' terminal nucleotide. Cell, 133(1), 116-127. https://doi.org/10.1016/j.cell.2008.02.034 Millar, A. A., Lohe, A., & Wong, G. (2019). Biology and Function of miR159 in Plants. Plants (Basel), 8(8). https://doi.org/10.3390/plants8080255 Palatnik, J. F., Wollmann, H., Schommer, C., Schwab, R., Boisbouvier, J., Rodriguez, R., Warthmann, N., Allen, E., Dezulian, T., Huson, D., Carrington, J. C., & Weigel, D. (2007). Sequence and expression differences underlie functional specialization of Arabidopsis microRNAs miR159 and miR319. Dev Cell, 13(1), 115-125. https://doi.org/10.1016/j.devcel.2007.04.012 Shimamura, M. (2016). Marchantia polymorpha: Taxonomy, Phylogeny and Morphology of a Model System. Plant Cell Physiol, 57(2), 230-256. https://doi.org/10.1093/pcp/pcv192 Sugano, S. S., Nishihama, R., Shirakawa, M., Takagi, J., Matsuda, Y., Ishida, S., Shimada, T., Hara-Nishimura, I., Osakabe, K., & Kohchi, T. (2018). Efficient CRISPR/Cas9-based genome editing and its application to conditional genetic analysis in Marchantia polymorpha. PLoS One, 13(10), e0205117. https://doi.org/10.1371/journal.pone.0205117 Tanizawa, Y., Mochizuki, T., Yagura, M., Sakamoto, M., Fujisawa, T., Kawamura, S., Shimokawa, E., Yamaoka, S., Nishihama, R., Bowman, J. L., Berger, F., Yamato, K. T., Kohchi, T., & Nakamura, Y. (2026). MarpolBase: genome database for Marchantia polymorpha featuring high quality reference genome sequences. Plant Cell Physiol, 67(3), 377-388. https://doi.org/10.1093/pcp/pcaf159 Tomizawa, Y., Minamino, N., Shimokawa, E., Kawamura, S., Komatsu, A., Hiwatashi, T., Nishihama, R., Ueda, T., Kohchi, T., & Kondo, Y. (2023). Harnessing Deep Learning to Analyze Cryptic Morphological Variability of Marchantia polymorpha. Plant Cell Physiol, 64(11), 1343-1355. https://doi.org/10.1093/pcp/pcad117 Tsuzuki, M., Nishihama, R., Ishizaki, K., Kurihara, Y., Matsui, M., Bowman, J. L., Kohchi, T., Hamada, T., & Watanabe, Y. (2016). Profiling and Characterization of Small RNAs in the Liverwort, Marchantia polymorpha, Belonging to the First Diverged Land Plants. Plant Cell Physiol, 57(2), 359-372. https://doi.org/10.1093/pcp/pcv182 Vaucheret, H., Vazquez, F., Crete, P., & Bartel, D. P. (2004). The action of ARGONAUTE1 in the miRNA pathway and its regulation by the miRNA pathway are crucial for plant development. Genes Dev, 18(10), 1187-1197. https://doi.org/10.1101/gad.1201404 Wang, H., Zhang, X., Liu, J., Kiba, T., Woo, J., Ojo, T., Hafner, M., Tuschl, T., Chua, N. H., & Wang, X. J. (2011). Deep sequencing of small RNAs specifically associated with Arabidopsis AGO1 and AGO4 uncovers new AGO functions. Plant J, 67(2), 292-304. https://doi.org/10.1111/j.1365-313X.2011.04594.x Wong, T. K., Ly-Trong, N., Ren, H., Baños, H., Roger, A. J., Susko, E., Bielow, C., De Maio, N., Goldman, N., & Hahn, M. W. (2025). IQ-TREE 3: phylogenomic inference software using complex evolutionary models. | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/103087 | - |
| dc.description.abstract | 微型 RNA(microRNA, miRNA)是一類長度約 20-24 個核苷酸的小分子非編碼RNA,能調控基因表現,參與植物生長發育及協助適應環境等。miR159 與 miR319 屬於植物中高度保守的 miR159/319 家族,兩者的序列高度相似,但在開花植物中調控不同的功能。過去研究已在苔蘚植物中證實 miR319 的存在,然而 miR159 的缺失,導致 miR159/319 家族在早期陸生植物中的演化歷程與功能分化仍不清楚。本研究重新分析已發表之小 RNA 資料庫及 MpAGO1 免疫沉澱中的小RNA資料庫,並從地錢(Marchantia polymorpha)中成功鑑定出 miR159。該 miRNA 顯著累積於 MpAGO1 中,顯示其在地錢中的調控功能性。序列比對、前驅物二級結構分析及系統發育分析結果進一步證實此 miRNA 屬於保守的 miR159 家族。本研究為 miR159 首次於苔類植物中之報導,擴展了目前 miR159 在陸生植物中的已知分布範圍。為探討 Mpo-miR159 與 Mpo-miR319 的生物學功能,本研究進一步進行目標基因預測及 RNA 降解體 (degradome) 分析。結果顯示 MpR2R3-MYB21 與 MpRKD 為地錢 miR159 及 miR319 調控網絡中的重要目標基因。為進一步驗證其功能,本研究利用 CRISPR/Cas9 系統建立 mir159 與 mir319 突變株。結果顯示,Mpmir319age 突變株的 gemmae 形成數量明顯減少,而 Mpmir319bge 突變株幾乎無法形成正常 gemma cup 及 gemmae。另一方面,Mpmir159ge 突變株則出現頂端分生組織分裂異常及 gemma cup 側壁發育缺陷等表型。此外,降解體分析發現 MpR2R3-MYB21 的切割訊號在 mir159ge 突變株中明顯下降,而在 mir319age 突變株中僅輕微下降,顯示 Mpo-miR159 為 MpR2R3-MYB21 的主要調控因子。相較之下,MpRKD 的切割訊號僅於mir319age 突變株中下降,而在mir159ge 與mir319bge 突變株中則無明顯變化,揭示 Mpo-miR319a 為 MpRKD 的主要調控因子。啟動子報導基因分析則顯示,MIR319a、MIR319b、MpR2R3-MYB21 與 MpRKD 主要表現於 gemmae 及 gemma cup 中,而 MIR159 則表現於發育中的頂端分生組織區域。綜合上述結果,Mpo-miR159 與 Mpo-miR319 在地錢營養生長及無性繁殖過程中具有不同但部分重疊的調控功能。本研究不僅首次在苔類植物證實 miR159 的存在,也提供了 miR159/319 家族於早期陸生植物演化及功能分化的重要證據。 | zh_TW |
| dc.description.abstract | MicroRNAs (miRNAs) are small non-coding RNAs that play important roles in post-transcriptional gene regulation in plants. Among conserved plant miRNAs, miR159 and miR319 belong to closely related miRNA families that share high sequence similarity but regulate distinct developmental processes in flowering plants. Previous studies have identified miR319 in bryophytes, whereas miR159 has long been considered absent from this lineage, leaving the evolutionary history and functional diversification of the miR159/319 family unclear in early-diverging land plants. In this study, we identified Mpo-miR159 in the liverwort Marchantia polymorpha through the reanalysis of published small RNA datasets and MpAGO1-IP small RNA libraries. Mpo-miR159 was strongly enriched in MpAGO1, supporting its role as a functional miRNA. Sequence comparison, precursor structure analysis, and phylogenetic analysis further demonstrated that Mpo-miR159 belongs to the conserved miR159 family and revealed a close evolutionary relationship between the miR159 and miR319 families. This finding provides the first evidence for the presence of miR159 in a liverwort. Functional analyses using CRISPR/Cas9-generated mutants revealed distinct developmental phenotypes. mir319age mutants produced fewer gemmae within gemma cups, whereas mir319bge mutants failed to form normal gemma cups and gemmae. mir159ge mutants displayed abnormal apical meristem development, including altered meristem division and defective gemma cup formation. To investigate the functions of Mpo-miR159 and Mpo-miR319, target prediction and degradome analyses were performed. The results identified MpR2R3-MYB21 and MpRKD as major targets of Mpo-miR159 and Mpo-miR319, respectively. Degradome analysis showed that cleavage of MpR2R3-MYB21 was markedly reduced in mir159ge mutants and only slightly reduced in mir319age mutants, suggesting that Mpo-miR159 is the major regulator of MpR2R3-MYB21. In contrast, cleavage of MpRKD was reduced in mir319age mutants but not in mir159ge or mir319bge mutants, indicating that Mpo-miR319a contributes mainly to MpRKD regulation. Additionally, promoter-reporter analyses revealed that MIR319a, MIR319b, MpR2R3-MYB21, and MpRKD were expressed in gemmae and gemma cups, whereas MIR159 expression was mainly observed in developing apical regions. Together, these findings demonstrate that functional diversification of the miR159/319 family had already occurred in early-diverging land plants. The identification of Mpo-miR159 extends the known distribution of miR159 to liverworts and provides new insights into the evolution and conservation of the miR159/319 regulatory network during land plant evolution. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2026-08-04T09:06:33Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2026-08-04T09:06:33Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | Contents
口試委員審定書 I 致謝 II 摘要 III Abstract V Contents VII List of Table IX List of Figures X List of Supplementary Tables XII Introduction 1 Materials & Methods 5 Plant materials and growth conditions 5 CRISPR-Cas9 vector construction 5 Promoter-reporter vector construction 6 Agrobacterium-mediated transformation of regenerating thalli 6 Genotyping and genomic DNA sequencing 7 Small RNA library construction and sequencing 8 Citrine-NLS signal observation 9 Sequencing alignment and phylogenetic tree analysis 10 Results 11 The first report of Mpo-miR159 in M. polymorpha 11 The phylogenic relationship between miR159 and miR319 14 mir159ge mutans showed abnormal meristem development and fail to develop the lateral wall of gemma cup 15 mir319age mutants exhibit reduced gemma formation 16 mir319bge mutants fail to develop gemma cups and gemmae 17 Degradome analysis reveals differential target cleavage mediated by Mpo-miR159 and Mpo-miR319 18 Distinct spatial expression patterns of MIR319a, MIR319b, MpRKD, and MpR2R3-MYB21 in dormant gemmae 19 Promoter-reporter analysis reveals dynamic expression during gemma development 20 Discussion 23 Evidence supporting Mpo-miR159 as a functional miRNA in M. polymorpha 23 Evolutionary divergence and sequence diversification of the miR159 and 319 family 24 Functional diversification of the miR159 and 319 family in M. polymorpha 25 Conclusion 28 References 29 Table 35 Figures 40 Supplementary Tables 61 | - |
| dc.language.iso | en | - |
| dc.subject | 地錢 | - |
| dc.subject | 保守miRNA家族 | - |
| dc.subject | miR159 | - |
| dc.subject | miR319 | - |
| dc.subject | 演化 | - |
| dc.subject | 無性繁殖 | - |
| dc.subject | 分生組織 | - |
| dc.subject | liverwort | - |
| dc.subject | conserved miRNA family | - |
| dc.subject | miR159 | - |
| dc.subject | miR319 | - |
| dc.subject | evolution | - |
| dc.subject | asexual reproduction | - |
| dc.subject | meristem | - |
| dc.title | 地錢 AGO1 中 miR159 的鑑定揭⽰其與 miR319 的差異調控功能 | zh_TW |
| dc.title | Identification of miR159 in AGO1 Reveals Its Differential Regulatory Function Compared to miR319 in Marchantia polymorpha | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 114-2 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 張碧芳;陳荷明;呂冠儒;唐涵 | zh_TW |
| dc.contributor.oralexamcommittee | Pi-Fang Linda Chang;Ho-Ming Chen;Kuan-Ju Lu;Han Tang | en |
| dc.subject.keyword | 地錢; 保守miRNA家族; miR159; miR319; 演化; 無性繁殖; 分生組織 | zh_TW |
| dc.subject.keyword | liverwort; conserved miRNA family; miR159; miR319; evolution; asexual reproduction; meristem | en |
| dc.relation.page | 70 | - |
| dc.identifier.doi | 10.6342/NTU202602258 | - |
| dc.rights.note | 同意授權(限校園內公開) | - |
| dc.date.accepted | 2026-07-23 | - |
| dc.contributor.author-college | 生物資源暨農學院 | - |
| dc.contributor.author-dept | 生物科技研究所 | - |
| dc.date.embargo-lift | 2026-08-04 | - |
| 顯示於系所單位: | 生物科技研究所 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-114-2.pdf 授權僅限NTU校內IP使用(校園外請利用VPN校外連線服務) | 16.46 MB | Adobe PDF |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
