Department of Molecular, Cellular, and Developmental Biology, University of Michigan, An Arbor, MI 48105, USA.
Plant Cell. 2012 Jul;24(7):2839-56. doi: 10.1105/tpc.112.101022. Epub 2012 Jul 24.
Position-dependent patterning of hair and non-hair cells in the Arabidopsis thaliana root epidermis is a powerful system to study the molecular basis of cell fate specification. Here, we report an epidermal patterning mutant affecting the ADENOSINE DIMETHYL TRANSFERASE 1A (DIM1A) rRNA dimethylase gene, predicted to participate in rRNA posttranscriptional processing and base modification. Consistent with a role in ribosome biogenesis, DIM1A is preferentially expressed in regions of rapid growth, and its product is nuclear localized with nucleolus enrichment. Furthermore, DIM1A preferentially accumulates in the developing hair cells, and the dim1A point mutant alters the cell-specific expression of the transcriptional regulators GLABRA2, CAPRICE, and WEREWOLF. Together, these findings suggest that establishment of cell-specific gene expression during root epidermis development is dependent upon proper ribosome biogenesis, possibly due to the sensitivity of the cell fate decision to relatively small differences in gene regulatory activities. Consistent with its effect on the predicted S-adenosyl-l-Met binding site, dim1A plants lack the two 18S rRNA base modifications but exhibit normal pre-rRNA processing. In addition to root epidermal defects, the dim1A mutant exhibits abnormal root meristem division, leaf development, and trichome branching. Together, these findings provide new insights into the importance of rRNA base modifications and translation regulation for plant growth and development.
拟南芥根表皮中毛发和非毛发细胞的位置依赖性模式是研究细胞命运特化分子基础的有力系统。在这里,我们报告了一个影响 ADENOSINE DIMETHYL TRANSFERASE 1A (DIM1A) rRNA 二甲基转移酶基因的表皮模式形成突变体,该基因预测参与 rRNA 转录后加工和碱基修饰。与核糖体生物发生的作用一致,DIM1A 在快速生长的区域优先表达,其产物定位于核内,核仁富集。此外,DIM1A 优先积累在发育中的毛细胞中,并且 dim1A 点突变改变了转录调节剂 GLABRA2、CAPRICE 和 WEREWOLF 的细胞特异性表达。这些发现表明,在根表皮发育过程中建立细胞特异性基因表达依赖于正确的核糖体生物发生,这可能是由于细胞命运决定对基因调控活性的微小差异非常敏感。与对预测的 S-腺苷-L-Met 结合位点的影响一致,dim1A 植物缺乏两个 18S rRNA 碱基修饰,但表现出正常的前 rRNA 加工。除了根表皮缺陷外,dim1A 突变体还表现出异常的根分生组织分裂、叶片发育和毛状体分支。这些发现为 rRNA 碱基修饰和翻译调控对植物生长和发育的重要性提供了新的见解。