Plant Research International, Bioscience, Droevendaalsesteeg 1, Wageningen, the Netherlands.
Genome Biol. 2009 Feb 25;10(2):R24. doi: 10.1186/gb-2009-10-2-r24.
Plant MADS box proteins play important roles in a plethora of developmental processes. In order to regulate specific sets of target genes, MADS box proteins dimerize and are thought to assemble into multimeric complexes. In this study a large-scale yeast three-hybrid screen is utilized to provide insight into the higher-order complex formation capacity of the Arabidopsis MADS box family. SEPALLATA3 (SEP3) has been shown to mediate complex formation and, therefore, special attention is paid to this factor in this study.
In total, 106 multimeric complexes were identified; in more than half of these at least one SEP protein was present. Besides the known complexes involved in determining floral organ identity, various complexes consisting of combinations of proteins known to play a role in floral organ identity specification, and flowering time determination were discovered. The capacity to form this latter type of complex suggests that homeotic factors play essential roles in down-regulation of the MADS box genes involved in floral timing in the flower via negative auto-regulatory loops. Furthermore, various novel complexes were identified that may be important for the direct regulation of the floral transition process. A subsequent detailed analysis of the APETALA3, PISTILLATA, and SEP3 proteins in living plant cells suggests the formation of a multimeric complex in vivo.
Overall, these results provide strong indications that higher-order complex formation is a general and essential molecular mechanism for plant MADS box protein functioning and attribute a pivotal role to the SEP3 'glue' protein in mediating multimerization.
植物 MADS 盒蛋白在众多发育过程中发挥重要作用。为了调节特定的靶基因,MADS 盒蛋白二聚化,并被认为组装成多聚体复合物。在这项研究中,利用大规模酵母三杂交筛选来深入了解拟南芥 MADS 盒家族的高级别复合物形成能力。SEPALLATA3(SEP3)已被证明介导复合物的形成,因此,本研究特别关注该因子。
总共鉴定出 106 个多聚体复合物;其中一半以上至少存在一种 SEP 蛋白。除了已知参与决定花器官身份的复合物外,还发现了各种由已知在花器官身份特化和开花时间决定中起作用的蛋白质组合组成的复合物。形成后一种类型复合物的能力表明,同源异形因子通过负自调节环在花中对参与花定时的 MADS 盒基因的下调中发挥重要作用。此外,还鉴定出各种可能对花转变过程的直接调控很重要的新复合物。随后对活植物细胞中的 APETALA3、PISTILLATA 和 SEP3 蛋白进行详细分析表明,体内形成了多聚体复合物。
总体而言,这些结果强烈表明,高级别复合物的形成是植物 MADS 盒蛋白功能的一种普遍且必要的分子机制,并将 SEP3“胶”蛋白在介导多聚化中的关键作用归因于 SEP3“胶”蛋白。