Department of Cell and Developmental Biology, University of Illinois at Urbana-Champaign, Urbana, United States.
Elife. 2022 Aug 30;11:e75879. doi: 10.7554/eLife.75879.
Temporal patterning is an important mechanism for generating a great diversity of neuron subtypes from a seemingly homogenous progenitor pool in both vertebrates and invertebrates. neuroblasts are temporally patterned by sequentially expressed Temporal Transcription Factors (TTFs). These TTFs are proposed to form a transcriptional cascade based on mutant phenotypes, although direct transcriptional regulation between TTFs has not been verified in most cases. Furthermore, it is not known how the temporal transitions are coupled with the generation of the appropriate number of neurons at each stage. We use neuroblasts of the optic lobe medulla to address these questions and show that the expression of TTFs Sloppy-paired 1/2 (Slp1/2) is directly regulated at the transcriptional level by two other TTFs and the cell-cycle dependent Notch signaling through two -regulatory elements. We also show that supplying constitutively active Notch can rescue the delayed transition into the Slp stage in cell cycle arrested neuroblasts. Our findings reveal a novel Notch-pathway dependent mechanism through which the cell cycle progression regulates the timing of a temporal transition within a TTF transcriptional cascade.
时间模式是脊椎动物和无脊椎动物中从看似同质的祖细胞库中产生大量神经元亚型的重要机制。神经母细胞通过顺序表达的时间转录因子(TTFs)进行时间模式化。这些 TTF 被认为基于突变表型形成转录级联,尽管在大多数情况下尚未在 TTF 之间直接验证转录调控。此外,尚不清楚时间转变如何与每个阶段产生适当数量的神经元相耦合。我们使用视叶髓质的神经母细胞来解决这些问题,并表明 Sloppy-paired 1/2 (Slp1/2) TTF 的表达在转录水平上受到另外两个 TTF 和细胞周期依赖性 Notch 信号的直接调节,通过两个调节元件。我们还表明,持续表达活性 Notch 可以挽救细胞周期停滞的神经母细胞中 Slp 阶段过渡延迟的问题。我们的研究结果揭示了一种新的 Notch 通路依赖性机制,通过该机制,细胞周期进程调节 TTF 转录级联内的时间转变的时间。