• 제목/요약/키워드: R2R3-MYB

검색결과 11건 처리시간 0.053초

Modification of cell wall structural carbohydrate in the hybrid poplar expressing Medicago R2R3-MYB transcription factor MtMYB70

  • Kim, Sun Hee;Choi, Young Im;Jin, Hyunjung;Shin, Soo-Jeong;Park, Jong-Sug;Kwon, Mi
    • Journal of Plant Biotechnology
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    • 제42권2호
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    • pp.93-103
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    • 2015
  • The isolation, cloning, and characterization of an R2R3-MYB transcription factor gene (MtMYB70) from the model legume Medicago truncatula is reported. MtMYB70 consists of a 768-bp coding sequence corresponding to 255 amino acids. Sequence alignment revealed that MtMYB70 cDNA contains conserved R2R3-type MYB domains with highly divergent C terminal regions. MtMYB70 was found to have relatively low sequence homology with known R2R3-MYB genes. Phylogenetic analysis placed the R2R3-MYB domain of MtMYB70 closest to PtMYB1, a known activator of lignin biosynthesis. Overexpression of MtMYB70 under the control of the 35S promoter in transgenic poplar did not cause a significant difference in total lignin content relative to the control, but glucan content was significantly increased in transgenic poplar. Therefore, MtMYB70 might have regulatory role in the biosynthesis of cell wall structural carbohydrates.

Classification and Expression Profiling of Putative R2R3 MYB Genes in Rice

  • Kim, Bong-Gyu;Ko, Jae-Hyung;Min, Shin-Young;Ahn, Joong-Hoon
    • Journal of Applied Biological Chemistry
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    • 제48권3호
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    • pp.127-132
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    • 2005
  • MYB genes, comprising group of related genes found in animal, plant, and fungal genomes, encode common DNA-binding domains composed of one to four repeat motifs. MYB genes containing two repeats (R2R3) constitute largest MYB gene family in plants. R2R3 MYB genes play important roles in regulation of secondary metabolism, control of cell shape, disease resistance, and hormone response. Eight-four R2R3 MYB genes were retrieved from rice genome for functional characterization of MYB genes. Analysis of MYB domains revealed each MYB domain contains three ${\alpha}$-helices with regularly spaced tryptophan residues. R2R3 MYB genes were divided into four subfamilies based on phylogenic analysis result. Real-time PCR analysis of 34 MYB genes revealed 12 MYB genes were highly expressed in seeds than in leaves, whereas 4 genes were highly expressed in leaves.

Determination of the MYB Motif Interacting with WD40 and Basic Helix Loop Helix Proteins

  • Kim, Ji-Hye;Kim, Bong-Gyu;Ahn, Joong-Hoon
    • Journal of Applied Biological Chemistry
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    • 제55권1호
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    • pp.67-70
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    • 2012
  • Plant MYB transcription factors regulate secondary metabolism, cellular morphogenesis, and plant hormone signaling pathway. MYB proteins in plants consist of two repeats of 50 amino acid residues, which are referred to as R2R3 and they interact with WD40 or basic helix loop helix (bHLH) proteins. Yeast two hybrid assay was determined whether rice MYB protein interacts with either OsTTG1, which contains a WD40 domain, or with OsGL3, which contains a bHLH domain. Among 30 OsMYB proteins, three interacted with OsTTG1 and five interacted with OsGL3. A series of MYB mutants were created to determine the MYB domain important for the interaction with OsTTG1 or OsGL3. By using the yeast two hybrid assay, we found that the R3 motif of OsMYB10 and the R2 motif of OsMYB16 were required for interaction with OsTTG1 and OsGL3 proteins, respectively.

고구마의 IbMYB1 유전자를 이용한 안토시아닌 고함유 형질전환 감자의 개발 (Development of transgenic potato with improved anthocyanin contents using sweet potato IbMYB1 gene)

  • 김윤희;한은희;곽상수;이신우
    • Journal of Plant Biotechnology
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    • 제45권4호
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    • pp.364-368
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    • 2018
  • R2R3 유형의 단백질인 IbMYB1 전사인자는 고구마의 뿌리에서 안토시아닌 생합성 과정을 조절하는 중요한 단백질이다. 선행연구에서 IbMYB1 유전자의 발현 증가를 통한 안토시아닌의 합성 증가가 담배, 애기장대 및 고구마의 저장뿌리에서 증명된 바 있다. 본 연구에서는 괴경(저장줄기) 특이적 PATATIN 프로모터와 산화스트레스 유도성 SWPA2 프로모터의 조절하에서 안토시아닌을 고함유하는 IbMYB1 유전자 과발현 형질전환 감자를 개발하여 그 특성을 분석하였다. PAT-IbMYB1 형질전환 식물체들은 대조구 식물체 및 SWPA2-IbMYB1 식물체 보다 높은 안토시아닌 함량을 괴경에서 나타내었다. 본 연구의 결과로서, IbMYB1의 과발현은 형질전환 기술을 이용한 특정 조직 특이적 안토시아닌 생산에 매우 좋은 개발 기술이 될 것으로 생각되는 바이다.

Growth, quality, and yield characteristics of transgenic potato (Solanum tuberosum L.) overexpressing StMyb1R-1 under water deficit

  • Im, Ju-Sung;Cho, Kwang-Soo;Cho, Ji-Hong;Park, Young-Eun;Cheun, Chung-Gi;Kim, Hyun-Jun;Cho, Hyun-Mook;Lee, Jong-Nam;Jin, Yong-Ik;Byun, Myung-Ok;Kim, Dool-Yi;Kim, Myeong-Jun
    • Journal of Plant Biotechnology
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    • 제39권3호
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    • pp.154-162
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    • 2012
  • This study was conducted to evaluate agronomic characteristics such as growth, quality, and yields of StMyb1R-1 transgenic potato and also to obtain the basic data for establishing assessment guidelines of transgenic potato. Three transgenic lines (Myb 1, Myb 2, and Myb 8) were cultivated under conventional irrigation, drought condition, and severe drought condition and were analyzed by comparing with wild type, non-transgenic cv. Superior. Myb 2 showed a different flower color from wild type and Myb 1 had much bigger secondary leaflets than wild type. Myb 1 and Myb 2 showed higher $P_2O_5$ content in both top and root zone and longer shaped tubers than wild type. In yield factors, transgenic lines had more tubers than wild type, however their yield decreases were severe because of the poor enlargement of tuber under water deficit condition. This tendency was noticeable in Myb 1 and Myb 2. In TR ratio, chlorophyll content, dry matter rate, and relative water content, there were no big differences between transgenic lines and wild type. Meanwhile, in phenotype, growth, quality, and yield factors, substantial equivalent was confirmed between Myb 8 and wild type. Then, Myb 8 showed the highest marketable tuber yield under conventional irrigation, while showed lower level than wild type under water deficit. Judged by this result, the enhancing droughttolerance by StMyb1R-1 gene might actually not mean the enhancement of photosynthesis or starch accumulation in tuber and, furthermore, not the yield improvement. More detailed research will be required to accurately understand the relationship between StMyb1R-1 and yield factors.

Enhanced Salt Stress Tolerance in Transgenic Potato Plants Expressing IbMYB1, a Sweet Potato Transcription Factor

  • Cheng, Yu-Jie;Kim, Myoung-Duck;Deng, Xi-Ping;Kwak, Sang-Soo;Chen, Wei
    • Journal of Microbiology and Biotechnology
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    • 제23권12호
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    • pp.1737-1746
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    • 2013
  • IbMYB1, a transcription factor (TF) for R2R3-type MYB TFs, is a key regulator of anthocyanin biosynthesis during storage of sweet potatoes. Anthocyanins provide important antioxidants of nutritional value to humans, and also protect plants from oxidative stress. This study aimed to increase transgenic potatoes' (Solanum tuberosum cv. LongShu No.3) tolerance to environmental stress and enhance their nutritional value. Transgenic potato plants expressing IbMYB1 genes under the control of an oxidative stress-inducible peroxidase (SWPA2) promoter (referred to as SM plants) were successfully generated through Agrobacterium-mediated transformation. Two representative transgenic SM5 and SM12 lines were evaluated for enhanced tolerance to salinity, UV-B rays, and drought conditions. Following treatment of 100 mM NaCl, seedlings of SM5 and SM12 lines showed less root damage and more shoot growth than control lines expressing only an empty vector. Transgenic potato plants in pots treated with 400 mM NaCl showed high amounts of secondary metabolites, including phenols, anthocyanins, and flavonoids, compared with control plants. After treatment of 400 mM NaCl, transgenic potato plants also showed high DDPH radical scavenging activity and high PS II photochemical efficiency compared with the control line. Furthermore, following treatment of NaCl, UV-B, and drought stress, the expression levels of IbMYB1 and several structural genes in the flavonoid biosynthesis such as CHS, DFR, and ANS in transgenic plants were found to be correlated with plant phenotype. The results suggest that enhanced IbMYB1 expression affects secondary metabolism, which leads to improved tolerance ability in transgenic potatoes.