John Innes Centre, Norwich Research Park, Colney, Norwich NR4 7UH, UK.
Science. 2011 Sep 9;333(6048):1436-40. doi: 10.1126/science.1202185.
The mechanisms that generate dynamic spatial patterns within proliferating tissues are poorly understood, largely because of difficulties in unravelling interactions between cell specification, polarity, asymmetric division, rearrangements, and growth. We address this problem for stomatal spacing in plants, which offer the simplifying advantage that cells do not rearrange. By tracking lineages and gene activities over extended periods, we show that limited stem cell behavior of stomatal precursors depends on maintenance of the SPEECHLESS (SPCH) transcription factor in single daughter cells. Modeling shows how this property can lead to observed stereotypical stomata lineages through a postmitotic polarity-switching mechanism. The model predicts the location of a polarity determinant BASL over multiple divisions, which we validate experimentally. Our results highlight the dynamic two-way interactions between stem cells and their neighborhood during developmental patterning.
增殖组织中动态空间模式形成的机制尚不清楚,主要是因为难以理清细胞特化、极性、不对称分裂、重排和生长之间的相互作用。我们针对植物气孔间距这一问题进行了研究,植物具有简化优势,即细胞不会重排。通过在较长时间内跟踪谱系和基因活性,我们发现气孔前体细胞的有限干细胞行为取决于单个子细胞中 SPEECHLESS(SPCH)转录因子的维持。模型表明,通过有丝分裂后极性转换机制,这种特性如何导致观察到的典型气孔谱系。该模型预测了 BASL 极性决定因子在多次分裂中的位置,我们通过实验进行了验证。我们的研究结果强调了发育模式形成过程中干细胞与其周围环境之间的动态双向相互作用。