Academic literature on the topic 'GA200X'
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Journal articles on the topic "GA200X"
Zhang, Chenhao, Xin Nie, Weilong Kong, Xiaoxiao Deng, Tong Sun, Xuhui Liu, and Yangsheng Li. "Genome-Wide Identification and Evolution Analysis of the Gibberellin Oxidase Gene Family in Six Gramineae Crops." Genes 13, no. 5 (May 12, 2022): 863. http://dx.doi.org/10.3390/genes13050863.
Full textHe, Liang, Lu, Wang, Liu, Ma, Zuo, Sun, Chen, and Mao. "Genome-Wide Identification and Expression Analysis of GA2ox, GA3ox, and GA20ox Are Related to Gibberellin Oxidase Genes in Grape (Vitis Vinifera L.)." Genes 10, no. 9 (September 5, 2019): 680. http://dx.doi.org/10.3390/genes10090680.
Full textPhong, Ong Xuân, Lý Khánh Linh, La Việt Hồng, Đỗ Tiến Phát, and Phạm Bích Ngọc. "BIẾN NẠP VÀ ĐÁNH GIÁ CÁC DÒNG XOAN TA (Melia azedarach L.) MANG GEN GA20-OXIDASE ĐƯỢC ĐIỀU KHIỂN BỞI PROMOTER GmPrP2." TNU Journal of Science and Technology 227, no. 14 (September 15, 2022): 113–20. http://dx.doi.org/10.34238/tnu-jst.6356.
Full textMa, Jikai, and Huogen Li. "The Formation of Shapes: Interplay of Genes during Leaf Development Processes." Forests 13, no. 10 (October 20, 2022): 1726. http://dx.doi.org/10.3390/f13101726.
Full textSun, Xiaorong, Jinshuai Shu, Ali Mohamed Ali Mohamed, Xuebin Deng, Xiaona Zhi, Jinrui Bai, Yanan Cui, et al. "Identification and Characterization of EI (Elongated Internode) Gene in Tomato (Solanum lycopersicum)." International Journal of Molecular Sciences 20, no. 9 (May 5, 2019): 2204. http://dx.doi.org/10.3390/ijms20092204.
Full textZheng, Feng, Yahan Wang, Dachuan Gu, and Xuncheng Liu. "Histone Deacetylase HDA15 Restrains PHYB-Dependent Seed Germination via Directly Repressing GA20ox1/2 Gene Expression." Cells 11, no. 23 (November 26, 2022): 3788. http://dx.doi.org/10.3390/cells11233788.
Full textDing, Qiangqiang, Feng Wang, Juan Xue, Xinxin Yang, Junmiao Fan, Hong Chen, Yi Li, and Han Wu. "Identification and Expression Analysis of Hormone Biosynthetic and Metabolism Genes in the 2OGD Family for Identifying Genes That May Be Involved in Tomato Fruit Ripening." International Journal of Molecular Sciences 21, no. 15 (July 28, 2020): 5344. http://dx.doi.org/10.3390/ijms21155344.
Full textTeshome, Shiferaw, and Mulugeta Kebede. "Analysis of regulatory elements in GA2ox, GA3ox and GA20ox gene families in Arabidopsis thaliana: an important trait." Biotechnology & Biotechnological Equipment 35, no. 1 (January 1, 2021): 1603–12. http://dx.doi.org/10.1080/13102818.2021.1995494.
Full textAshikari, Motoyuki, Akie Sasaki, Miyako Ueguchi-Tanaka, Hironori Itoh, Asuka Nishimura, Swapan Datta, Kanako Ishiyama, et al. "Loss-of-function of a Rice Gibberellin Biosynthetic Gene, GA20 oxidase (GA20ox-2), Led to the Rice ‘Green Revolution’." Breeding Science 52, no. 2 (2002): 143–50. http://dx.doi.org/10.1270/jsbbs.52.143.
Full textYue, Jing, Heyu Yang, Shaohui Yang, and Jiehua Wang. "TDIF overexpression in poplars retards internodal elongation and enhances leaf venation through interaction with other phytohormones." Tree Physiology 40, no. 1 (December 19, 2019): 60–72. http://dx.doi.org/10.1093/treephys/tpz126.
Full textDissertations / Theses on the topic "GA200X"
大島, 孝仁. "酸化ガリウム系半導体の機能とデバイス応用に関する研究." 京都大学 (Kyoto University), 2010. http://hdl.handle.net/2433/120869.
Full textRamiz, Zarka. "Genetic Control of Seed Dormancy in Lolium rigidum Gaudin and Bromus diandrus Roth." Thesis, 2022. https://hdl.handle.net/2440/136519.
Full textThesis (Ph.D.) -- University of Adelaide, School of Agriculture, Food and Wine, 2022
CHIU, CHIEN-CHIH, and 邱建志. "Regulation of Gibberellin by GA2ox Gene in Petunia (Petunia x Hybrida ’Mitchell Diploid’)." Thesis, 2019. http://ndltd.ncl.edu.tw/handle/du5u4s.
Full text元培醫事科技大學
生物科技暨製藥技術系碩士班
107
In this study, the oxidative function of Arabidopsis thaliana AtGA2ox8 was genetically engineered into Petunia x hybrid ‘Mitchell Diploid’ to alter GA (Gibberellin) biosynthesis. The purpose is to reduce the bioactive GA levels in plant to achieve dwarfism. In traditional horticulture practice, many physical or chemical methods are employed to control the height of plant. They are always labor-consuming with low efficiency. Spraying chemicals is one of the fastest solution. However, this is not quite environmental friendly. In order to overcome this issue, genetic engineering is an alternative option. GA belongs to plant hormone that can regulate the height during plant growth and development. By transforming a GA oxidase gene to convert bioactive GA’s into inactive forms or other structures in plants resulting in dwarf phenotype. In this project, petunias (Mitchell Diploid; MD) were previously transformed with coding region of AtGA2ox8 under the control of CaMV 35S promoter. The At2GAox8 transgenic lines were confirmed by PCR analysis. Three transgenic lines with dwarf phenotype were selected and designated as D8, D12, D15, and the wild type MD as control. The plant heights from the lowest to the highest were D8 (13.60±3.48 cm), D15 (27.55±3.82 cm), and D12 (60.75±2.66 cm) after 22 weeks of planting. The plant heights of D8 and D15 were significantly shorter than those of MD (64.20±3.48 cm). Branch numbers at 22 weeks of planting were 8.10±2.47 (D8) and 9.10±2.47 (D15) that were significantly different from 17.70±2.53 (MD). The growth of root systems were not affected significantly among transgenic lines and MD. Gene expression levels of At2GAox8 in roots, stems, leaves and petals from transgenic plants D8, D15, D12, and wild type MD were analyzed by RT-PCR assay. The results demonstrated that the At2GAox8 expression in D12 was less than the other transgenic plants in the aerial parts and petals of plant. Our results confirmed that transgenic At2GAox8 gene can oxidize GA’s in petunia to alter whole plant structure and achieve dwarfism. The applications of AtGA2ox8 gene in ornamental plants are possible, and this plant biotechnology not only can be further utilized in horticulture to reduce the applications of chemicals but also adding the ornamental value for plants.
Pai, Yu-Min, and 白育旻. "Searching for transcription factors involved in regulating expression of GA2ox genes and characterization of a high tiller number T-DNA insertion mutant M69217." Thesis, 2015. http://ndltd.ncl.edu.tw/handle/16729582236393637615.
Full text國立中興大學
分子生物學研究所
103
GA (gibberellic acids) is one of the plant hormones involved in plants development, excessive GA cause plant lodging and lack of GA cause plant dwarf. GA2-oxidases are enzymes catalyze bioactive GA or GA precursors to inactive GAs and to regulate GA homeostasis in plants. There are nine GA2-oxidase genes in rice (OsGA2ox1–9) and how these gene expressions are regulated temporally and spatially in rice plant have not yet been characterized. This study intended to search for transcription factors involved in regulating the expression of OsGA2ox genes. After bioinformatics analysis, promoter sequences of most OsGA2ox genes contain DOF (DNA binding with one finger) transcription factor binding site. Phylogenetic analysis of 33 OsDOFs and their possible involvement in GA regulation based on previous studies, totally 7 T-DNA insertion mutants, including OsDOFACT (M51680 and M53794)、OsDOF7ACT (M63981)、OsDOF10ACT (M45005)、OsDOF10KNO (M78151)、OsDOF24KNO (M61519) and OsDOF25ACT (M66458), from TRIM library were collected. After field observation, mutant M53794 (for OsDOF1 target gene) and mutant M61519 (for OsDOF24 target gene) revealed slightly dwarf phenotype and were further characterized. The RNA expression of two target genes, OsDOF1 and OsDOF24, were analyzed by RT-PCR. Gene of OsDOF1 showed increased expression in M53794 and DOF24 in M61519 showed the same expression level as those of TNG67. Expression of OsGA2ox genes in these two mutants were analyzed and neither significant nor consistent levels of expression for OsGA2ox genes was observed between mutant and TNG67, suggested that the expression of OsGA2ox genes were not regulated by OsDOF1 or OsDOF24 and the inconsistent expression of OsGA2ox genes might cause by the environment factors. Mutant M69217 showed severe dwarf and high tiller number and its flanking genes CM (Chorismate mutase) and CCR (Cinnamoyl-CoA reductase) were activated. However overexpression of CM and/or CCR genes could not recapitulate the phenotype of M69217. In this study, further characterization of this mutant and identification of genes responsible for its phenotype was investigated. Further analysis showed another gene, GNAT (GCN5-related N-acetyltransferase), located near the T-DNA insertion site was also activated. Overexpressing GNAT in transgenic rice to investigate its effect was underway. Another T-DNA insertion mutant M111350 revealed the same phenotype as that of M69217 and results suggested that the unstoppable tillering might cause by activation of miR156b. It was interesting to realize that another miR156d gene was located near the insertion site as well. However, the expression of miR156d in M69217 was no significant different from that in TNG67, but the miR156d target gene SPL16 (SQUAMOSA Promoter-Binding-Like Transcription Factors) decreased in M69217. Overexpressing miR156d in transgenic rice was performed to investigate its effect on tillering.
Books on the topic "GA200X"
Notebook, charlesvineyard. Composition Notebook: Lemur Monkey Madagascar Jungle Aye Aye Zoo Ga20 - 50 Sheets, 100 Pages - 6 X 9 Inches. Independently Published, 2020.
Find full textBook chapters on the topic "GA200X"
Xu, Y., R. Grote, Y. Wen, L. Shuller-Nckles, and K. S. Brinkman. "Development of Ga Doped Hollandites Bax Csy (Ga2x+y Ti8-2x-y )O6 for Cs Immobilization." In Ceramic Transactions Series, 157–64. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2016. http://dx.doi.org/10.1002/9781119234531.ch14.
Full text"GA20 The Dead Adonis, by Robert Cholmeley (Yale MS Osborn c190)." In Classical Presences: Newly Recovered English Classical Translations, 1600–1800. Oxford University Press, 2018. http://dx.doi.org/10.1093/oseo/instance.00251132.
Full textSatsuma, A., A. Gon-no, K. Nishi, S. Komai, and T. Hattor. "Contributions of three types of Ga sites in propane aromatization over Ga203/Ga-M0R catalysts." In New Developments and Application in Chemical Reaction Engineering, 257–60. Elsevier, 2006. http://dx.doi.org/10.1016/s0167-2991(06)81582-x.
Full textConference papers on the topic "GA200X"
Putman, Matthew. "AI process improvements for Ga203." In Oxide-based Materials and Devices XIII, edited by Ferechteh H. Teherani and David J. Rogers. SPIE, 2022. http://dx.doi.org/10.1117/12.2631672.
Full textZeng, Ke, Abhishek Vaidya, and Uttam Singisetti. "710 V Breakdown Voltage in Field Plated Ga203 MOSFET." In 2018 76th Device Research Conference (DRC). IEEE, 2018. http://dx.doi.org/10.1109/drc.2018.8442222.
Full textApriana, Aniversari, Tri Joko Santoso, Atmitri Sisharmini, Reflinur, A. Dinar Ambarwati, Toto Hadiarto, Sustiprijatno, and Nuryati. "Phenotypic and genetic stability evaluation of the targeted GA20ox-2 gene mutation in CRISPR/Cas9 mutant rice derived from Mentong cultivar." In THE SECOND INTERNATIONAL CONFERENCE ON GENETIC RESOURCES AND BIOTECHNOLOGY: Harnessing Technology for Conservation and Sustainable Use of Genetic Resources for Food and Agriculture. AIP Publishing, 2022. http://dx.doi.org/10.1063/5.0075603.
Full text"ORIENTATsIONNAYa ZAVISIMOST'' ELASTOKALORIChESKOGO EFFEKTA V MONOKRISTALLAKh SPLAVA Ni50Mn30 Ga20." In Fizicheskaya mezomekhanika. Materialy s mnogourovnevoy ierarkhicheski organizovannoy strukturoy i intellektual'nye proizvodstvennye tekhnologii. Tomsk State University, 2020. http://dx.doi.org/10.17223/9785946219242/187.
Full textNicolini, Valeria, Sylvia Herter, Sabine Lang, Inja Walhauer, Erwin van Puijenbroek, Claire Dunn, Pablo Umana, and Christian A. Gerdes. "Abstract A156: GA201 (RG7160) pretreatments and combination therapies improve efficacy without negatively affecting antitumoral ADCC." In Abstracts: AACR-NCI-EORTC International Conference: Molecular Targets and Cancer Therapeutics--Nov 12-16, 2011; San Francisco, CA. American Association for Cancer Research, 2011. http://dx.doi.org/10.1158/1535-7163.targ-11-a156.
Full textChoi, Yong Gyu, Kyong-Hon Kim, Vladimir A. Chernov, and Jong Heo. "X-ray absorption spectroscopic analyses and fluorescence emission characteristics of PbO-Bi203-Ga203 glasses doped with rare-earth ions." In Photonics East '99, edited by Mohammed Saad and James A. Harrington. SPIE, 1999. http://dx.doi.org/10.1117/12.372801.
Full textPool, Martin, Arjan Kol, Marjolijn N. Lub-De Hooge, Christian A. Gerdes, Steven de Jong, Elisabeth G. E. de Vries, and Anton G. T. Terwisscha van Scheltinga. "Abstract 4931: ImmunoPET and fluorescence imaging with Zirconium-89 and IRDye 800CW labeled glycoengineered epidermal growth factor receptor antibody GA201." In Proceedings: AACR Annual Meeting 2014; April 5-9, 2014; San Diego, CA. American Association for Cancer Research, 2014. http://dx.doi.org/10.1158/1538-7445.am2014-4931.
Full textKol, Arjan, Steven de Jong, Martin Pool, Elisabeth G. E. de Vries, Christian A. Gerdes, and Anton G. T. Terwisscha van Scheltinga. "Abstract 4511: Differential effects of GA201 and cetuximab on EGFR expression and endosomal recycling in non-small cell lung cancer cell lines." In Proceedings: AACR Annual Meeting 2014; April 5-9, 2014; San Diego, CA. American Association for Cancer Research, 2014. http://dx.doi.org/10.1158/1538-7445.am2014-4511.
Full textOppenheim, David, David Malone, Aniekan Etuk, Timothy Murray, Laura McLaughlin, Roberto Spreafico, Claudia Pena-Murillo, et al. "Abstract C221: Glycoengineered anti-EGFR (GA201) elicits enhanced ADCC responses by NK cells from colorectal cancer patients despite tumor-associated impairments to natural cytotoxicity." In Abstracts: AACR-NCI-EORTC International Conference: Molecular Targets and Cancer Therapeutics--Nov 12-16, 2011; San Francisco, CA. American Association for Cancer Research, 2011. http://dx.doi.org/10.1158/1535-7163.targ-11-c221.
Full textXu, Bei, Jichao Hu, Xiaomin He, Xi Wang, Dan li, and Chunlan Chen. "Effect of Growth Temperature on the Characteristics of β-Ga203 Thin Films Grown on 4H-SiC (0001) Substrates by Low Pressure Chemical Vapor Deposition." In 2021 IEEE 4th International Conference on Electronics Technology (ICET). IEEE, 2021. http://dx.doi.org/10.1109/icet51757.2021.9450967.
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