Department of Biochemistry, Purdue University, West Lafayette, IN, 47907, USA.
Purdue Center for Plant Biology, Purdue University, West Lafayette, IN, 47907, USA.
New Phytol. 2019 Jul;223(1):233-245. doi: 10.1111/nph.15741. Epub 2019 Mar 18.
The Mediator complex functions as a hub for transcriptional regulation. MED5, an Arabidopsis Mediator tail subunit, is required for maintaining phenylpropanoid homeostasis. A semidominant mutation (ref4-3) that causes a single amino acid substitution in MED5b functions as a strong suppressor of the pathway, leading to decreased soluble phenylpropanoid accumulation, reduced lignin content and dwarfism. By contrast, loss of MED5 results in increased concentrations of phenylpropanoids. We used a reverse genetic approach to identify suppressors of ref4-3 and found that ref4-3 requires CDK8, a kinase module subunit of Mediator, to repress plant growth. The genetic interaction between MED5 and CDK8 was further characterized using mRNA-sequencing (RNA-seq) and metabolite analysis. Growth inhibition and suppression of phenylpropanoid metabolism can be genetically separated in ref4-3 by elimination of CDK8 kinase activity; however, the stunted growth of ref4-3 is not dependent on the phosphorylation event introduced by the G383S mutation. In addition, rather than perturbation of lignin biosynthesis, misregulation of DJC66, a gene encoding a DNAJ protein, is involved in the dwarfism of the med5 mutants. Together, our study reveals genetic interactions between Mediator tail and kinase module subunits and enhances our understanding of dwarfing in phenylpropanoid pathway mutants.
中介复合物作为转录调控的枢纽。拟南芥中介尾部亚基 MED5 是维持苯丙素类化合物稳态所必需的。一个导致 MED5b 单一氨基酸取代的半显性突变(ref4-3) 作为该途径的强抑制子,导致可溶性苯丙素类化合物积累减少、木质素含量降低和矮化。相比之下,MED5 的缺失会导致苯丙素类化合物浓度增加。我们使用反向遗传学方法来鉴定 ref4-3 的抑制子,并发现 ref4-3 需要 CDK8,即中介的激酶模块亚基,来抑制植物生长。利用 mRNA 测序 (RNA-seq) 和代谢物分析进一步表征了 MED5 和 CDK8 之间的遗传相互作用。通过消除 CDK8 激酶活性,可以在 ref4-3 中在遗传上分离生长抑制和苯丙素代谢的抑制;然而,ref4-3 的矮化生长并不依赖于 G383S 突变引入的磷酸化事件。此外,与木质素生物合成的扰动不同,DJC66 的错误调控,即编码 DNAJ 蛋白的基因,参与了 med5 突变体的矮化。总之,我们的研究揭示了中介尾部和激酶模块亚基之间的遗传相互作用,并增强了我们对苯丙素途径突变体矮化的理解。