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AGL80 is required for central cell and endosperm development in Arabidopsis.AGL80是拟南芥中央细胞和胚乳发育所必需的。
Plant Cell. 2006 Aug;18(8):1862-72. doi: 10.1105/tpc.106.040824. Epub 2006 Jun 23.
2
trans meets cis in MADS science.在MADS科学领域中,跨性别者与顺性别者相遇。
Trends Plant Sci. 2006 May;11(5):224-31. doi: 10.1016/j.tplants.2006.03.008. Epub 2006 Apr 17.
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Expression profiling identifies genes expressed early during lint fibre initiation in cotton.表达谱分析鉴定出棉花棉纤维起始早期表达的基因。
Plant Cell Physiol. 2006 Jan;47(1):107-27. doi: 10.1093/pcp/pci228. Epub 2005 Nov 7.
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Cell type-specific expression profiling in plants via cell sorting of protoplasts from fluorescent reporter lines.通过对荧光报告株系原生质体进行细胞分选来分析植物中细胞类型特异性的表达谱。
Nat Methods. 2005 Aug;2(8):615-9. doi: 10.1038/nmeth0805-615.
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Transcription factor families have much higher expansion rates in plants than in animals.转录因子家族在植物中的扩张速率比在动物中高得多。
Plant Physiol. 2005 Sep;139(1):18-26. doi: 10.1104/pp.105.065110.
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Transcription switches for protoxylem and metaxylem vessel formation.原生木质部和后生木质部导管形成的转录开关。
Genes Dev. 2005 Aug 15;19(16):1855-60. doi: 10.1101/gad.1331305.
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Functional dissection of the plant-specific SBP-domain: overlap of the DNA-binding and nuclear localization domains.植物特有的SBP结构域的功能剖析:DNA结合结构域与核定位结构域的重叠
J Mol Biol. 2005 Sep 23;352(3):585-96. doi: 10.1016/j.jmb.2005.07.013.
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Flower development and evolution: gene duplication, diversification and redeployment.花的发育与进化:基因复制、多样化及重新部署
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Isolation and characterization of new MIKC*-Type MADS-box genes from the moss Physcomitrella patens.从苔藓小立碗藓中分离和鉴定新型MIKC*型MADS-box基因
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10
Gene family analysis of the Arabidopsis pollen transcriptome reveals biological implications for cell growth, division control, and gene expression regulation.拟南芥花粉转录组的基因家族分析揭示了细胞生长、分裂控制和基因表达调控的生物学意义。
Plant Physiol. 2005 Jun;138(2):744-56. doi: 10.1104/pp.104.057935. Epub 2005 May 20.

MIKC* MADS 蛋白复合物结合在拟南芥晚期花粉特异性启动子近端区域富集的基序。

MIKC* MADS-protein complexes bind motifs enriched in the proximal region of late pollen-specific Arabidopsis promoters.

作者信息

Verelst Wim, Saedler Heinz, Münster Thomas

机构信息

Department of Molecular Plant Genetics, Max Planck Institute for Plant Breeding Research, D-50829 Cologne, Germany.

出版信息

Plant Physiol. 2007 Jan;143(1):447-60. doi: 10.1104/pp.106.089805. Epub 2006 Oct 27.

DOI:10.1104/pp.106.089805
PMID:17071640
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1761959/
Abstract

The genome of Arabidopsis (Arabidopsis thaliana) encodes over 100 MADS-domain transcription factors, categorized into five phylogenetic subgroups. Most research efforts have focused on just one of these subgroups (MIKC(c)), whereas the other four remain largely unexplored. Here, we report on five members of the so-called Mdelta or Arabidopsis MIKC* (AtMIKC*) subgroup, which are predominantly expressed during the late stages of pollen development. Very few MADS-box genes function in mature pollen, and from this perspective, the AtMIKC* genes are therefore highly exceptional. We found that the AtMIKC* proteins are able to form multiple heterodimeric complexes in planta, and that these protein complexes exhibit a for the MADS-family unusual and high DNA binding specificity in vitro. Compared to their occurrence in promoters genome wide, AtMIKC* binding sites are strongly overrepresented in the proximal region of late pollen-specific promoters. By combining our experimental data with in silico genomics and pollen transcriptomics approaches, we identified a considerable number of putative direct target genes of the AtMIKC* transcription factor complexes in pollen, many of which have known or proposed functions in pollen tube growth. The expression of several of these predicted targets is altered in mutant pollen in which all AtMIKC* complexes are affected, and in vitro germination of this mutant pollen is severely impaired. Our data therefore suggest that the AtMIKC* protein complexes play an essential role in transcriptional regulation during late pollen development.

摘要

拟南芥(Arabidopsis thaliana)的基因组编码超过100种MADS结构域转录因子,分为五个系统发育亚组。大多数研究工作仅聚焦于其中一个亚组(MIKC(c)),而其他四个亚组在很大程度上仍未被探索。在此,我们报道了所谓的Mdelta或拟南芥MIKC*(AtMIKC*)亚组的五个成员,它们主要在花粉发育后期表达。在成熟花粉中发挥功能的MADS-box基因非常少,从这个角度来看,AtMIKC基因因此极为特殊。我们发现AtMIKC蛋白能够在植物体内形成多种异源二聚体复合物,并且这些蛋白复合物在体外表现出对MADS家族而言不同寻常且高度的DNA结合特异性。与它们在全基因组启动子中的出现情况相比,AtMIKC结合位点在晚期花粉特异性启动子的近端区域中显著富集。通过将我们的实验数据与计算机基因组学和花粉转录组学方法相结合,我们在花粉中鉴定出了相当数量的AtMIKC转录因子复合物的假定直接靶基因,其中许多基因在花粉管生长中具有已知或推测的功能。这些预测靶标中的几个在所有AtMIKC复合物都受到影响的突变花粉中的表达发生了改变,并且这种突变花粉的体外萌发严重受损。因此,我们的数据表明AtMIKC蛋白复合物在花粉发育后期的转录调控中起着至关重要的作用。