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17篇 您的检索式:作者名="Dirk Inze"
    题名 作者 年代 出处 被引量
1The GW2-WG1-OsbZIP47 pathway controls grain size and weight in rice显示文摘Regulation of seed size is a key strategy for improving crop yield and is also a basic biological question.However,the molecular mechanisms by which plants determine their seed size remain elusive.Here,we report that the GW2-WG1-OsbZIP47 regulatory module controls grain width and weight in rice.WG1,which encodes a glutaredoxin protein,promotes grain growth by increasing cell proliferation.Interestingly,WG1 interacts with the transcription factor OsbZIP47 and represses its transcriptional activity by associating with the transcriptional co-repressor ASP1,indicating that WG1 may act as an adaptor protein to recruit the transcriptional co-repressor.In contrary,OsbZIP47 restricts grain growth by decreasing cell proliferation.Further studies reveal that the E3 ubiquitin ligase GW2 ubiquitinates WG1 and targets it for degradation.Genetic analyses confirm that GW2,WG1,and OsbZIP47 function in a comm on pathway to control grain growth.Taken together,ourfindi ngs reveal a genetic and molecular framework for the control of grain size and weight by the GW2-WG1-OsbZIP47 regulatory module,providing new targets for improving seed size and weight in crops.Jianqin Hao Dekai Wang Yingbao Wu Ke Huang Penggen Duan Na Li Ran Xu Dali Zeng Guojun Dong Baolan Zhang Limin Zhang Dirk Inze Qian Qian Yunhai Li 2021Molecular Plant2021,14,8:14
2Role of Arabidopsis UV RESISTANCE LOCUS 8 in Plant Growth Reduction under Osmotic Stress and Low Levels of UV-B显示文摘在热点环境,植物暴露于压力的不同类型,例如触发普通 morphogenic 的 UV-B,而且 droughtstress 的过量适应反应导致植物生长的一般减小。这里,我们 reportthat Arabidopsis thaliana 紫外抵抗地点 8 (UVR8 ) 基因, UV-B morphogenic 反应的一个已知的管理者,能补充 Saccharomyces cerevisiae osmo 敏感的异种和它的表示在 Arabidopsis 植物在渗透或咸的应力以后被导致。在 UV-B 的底层下面,植物 overexpressing UVR8 与减少的根开发被相形见绌并且与控制植物相比积累更多的 flavonoids。生长 defectsare 主要由于细胞扩大的抑制。UVR8 overexpression 在 UV-B 的底层下面在植物触发的生长抑制被导致甘露糖醇的渗透的应力加重,但是它不是由离子的应力的 significantlyaffected。相反, uvr8-6 异种植物不在标准条件下面不同于野类型的植物,但是他们显示出一个增加的射击生长 underhigh 盐压力。我们的数据建议 flavonoid 并且可能的调停 UVR8 的累积在植物生长素 homeostasisare 改变观察生长显型的内在的机制并且 UVR8 可能为 integratingplant 生长和压力 signals.Key 词有一个重要角色:Rossella Fasano Nathalie Gonzalez Alessandra Tosco Fabrizio Dal Piaz Teresa Docimo Ramon Serrano Stefania Grillo Antonella Leone Dirk Inze 2014Molecular Plant2014,7,5:7
3Molecular and Physiological Analysis of Growth-Limiting Drought Stress in Brachypodium distachyon Leaves显示文摘干旱容忍的草 Brachypodium distachyon 是为适度的草和谷物庄稼的新兴的模型种。为了为干旱探索这种的实用性,学习,一在 vivo 可再现干旱试金被开发。弄干的自发的土壤在叶尺寸导致了 45% 减小,并且这主要由于在细胞扩大的减少,而细胞分割由干旱仍然保持大部分未受影响。调查观察的叶生长减小的分子的基础,第三片 Brachypodium 叶在三个地区被把,也就是增长,扩大,和成熟地区,并且使分析遭到了到 transcriptome,基于一个整个染色体的并列数组。这条途径允许我们加亮不同的发展的叶地区的侧面不同地回答到干旱的那 transcriptome。涉及干旱忍耐的几基因和功能的过程被识别。transcriptome 数据在增长地区建议增加的精力可获得性,与甾醇合成的一条起来规定一起,那可以影响膜流动性。这个信息可以被用来改进适度的谷物的忍耐到干旱,它无疑是今天并且在不久的将来的农业面对的主要环境挑战之一。Wim Verelst Edoardo Bertolini Stefanie De Bodt Klaas Vandepoele Marlies Demeulenaere Mario Enrico pè Dirk Inzé 2013Molecular Plant2013,6,2:6
4超氧化物歧化酶与胁迫耐受性显示文摘氧自由基类的氧化协迫导致氧伤害发生,是许多生物系统的重要现象。超氧化物歧化酶因被确认为是生物机体抵抗氧伤害机制的基础物质而理所当然地成为研究焦点。在植物领域。Chris Bowler Marc Van Montagu Dirk Inze 阚文靖 朱宁华 1994经济林研究1994,12,S1:3
5Cell Cycle Regulation in Plant Development <sup>1</sup>显示文摘Dirk Inzé Lieven De Veylder 2006Annual Review of Genetics2006,,:1
6Leaf size control: complex coordination of cell division and expansion显示文摘Nathalie Gonzalez Hannes Vanhaeren Dirk Inzé 2012Trends in Plant Science2012,,6:1
7AtGRP2, a cold-induced nucleo-cytoplasmic RNA-binding protein, has a role in flower and seed development显示文摘Adriana Flores Fusaro Silvia Nora Bocca Rose Lucia Braz Ramos Rosa Maria Barr?co Claudia Magioli Vanessa Cardeal Jorge Tatiana Cardoso Coutinho Camila Martins Rangel-Lima Riet Rycke Dirk Inzé Gilbert Engler Gilberto Sachetto-Martins 2007Planta2007,,6:1
8Signal transduction during oxidative stress 显示文摘Eva Vranova Dirk Inze and Frank Van Breusegem 2002Journal of Experimental Botany2002,53,327:1
9CEO1, a new protein from Arabidopsis thaliana , protects yeast against oxidative damage 1 1 CEO1 was deposited in the EMBL databank with the accession number AJ251578 .显示文摘Enric Belles-Boix Elena Babiychuk Marc Van Montagu Dirk Inzé Sergei Kushnir 2000FEBS Letters2000,,1:1
10H 2 O 2 and NO: redox signals in disease resistance显示文摘Wim Van Camp Marc Van Montagu Dirk Inzé 1998Trends in Plant Science1998,,9:1
11Singal transduction during oxidative stress 显示文摘Eva Vranova Dirk Inze Frank Van Breusegem 2002Journal of Experimental Botany2002,53,372:1
12Plant L-ascorbic acid: chemistry, function, metabolism, bioavailability and effects of processing 显示文摘Mark W Davey Marc Van Montagu Dirk Inze 2000Journal of the Science of Food and Agriculture2000,,80:1
13Expression of a novel-type small proline-rich protein gene of alfalfa is induced by 2,4-dichlorophenoxiacetic acid in dedifferentiated callus cells显示文摘János Gy?rgyey Kinga Németh Zoltán Magyar Zsolt Kelemen Thierry Alliotte Dirk Inzé Dénes Dudits 1997Plant Molecular Biology1997,,4:1
14High meiotic stability of a foreign gene introduced into tobacco by Agrobacterium-mediated transformation显示文摘Andreas J. Müller Ralf R. Mendel Joachim Schiemann Chris Simoens Dirk Inzé 1987MGG Molecular & General Genetics1987,,1:1
15Expression of cell cycle regulatory genes and morphological alterations in response to salt stress in Arabidopsis thaliana显示文摘Sylvia Burssens Kristiina Himanen Brigitte van de Cotte Tom Beeckman Marc Van Montagu Dirk Inzé Nathalie Verbruggen 2000Planta2000,,5:1
16AtGRP2, a cold-induced nucleo-cytoplasmic RNA-binding protein, has a role in flower and seed development显示文摘Adriana Flores Fusaro Silvia Nora Bocca Rose Lucia Braz Ramos Rosa Maria Barr?co Claudia Magioli Vanessa Cardeal Jorge Tatiana Cardoso Coutinho Camila Martins Rangel-Lima Riet Rycke Dirk Inzé Gilbert Engler Gilberto Sachetto-Martins 2007Planta2007,,6:1
17Connecting genes tometabolites by a systems biology approach 显示文摘Kirsi-Marja Oksman-Caldentey Dirk Inze Matej Oresic 2004PNAS2004,101,27:1
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