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Arabidopsis BIRD Zinc Finger Proteins Jointly Stabilize Tissue Boundaries by Confining the Cell Fate Regulator SHORT-ROOT and Contributing to Fate Specification

机译:拟南芥BIRD锌指蛋白通过限制细胞命运调节剂SHORT-ROOT并有助于命运规范来共同稳定组织边界

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摘要

Plant cells cannot rearrange their positions; therefore, sharp tissue boundaries must be accurately programmed. Movement of the cell fate regulator SHORT-ROOT from the stele to the ground tissue has been associated with transferring positional information across tissue boundaries. The zinc finger BIRD protein JACKDAW has been shown to constrain SHORT-ROOT movement to a single layer, and other BIRD family proteins were postulated to counteract JACKDAW’s role in restricting SHORT-ROOT action range. Here, we report that regulation of SHORT-ROOT movement requires additional BIRD proteins whose action is critical for the establishment and maintenance of the boundary between stele and ground tissue. We show that BIRD proteins act in concert and not in opposition. The exploitation of asymmetric redundancies allows the separation of two BIRD functions: constraining SHORT-ROOT spread through nuclear retention and transcriptional regulation of key downstream SHORT-ROOT targets, including SCARECROW and CYCLIND6. Our data indicate that BIRD proteins promote formative divisions and tissue specification in the Arabidopsis thaliana root meristem ground tissue by tethering and regulating transcriptional competence of SHORT-ROOT complexes. As a result, a tissue boundary is not “locked in” after initial patterning like in many animal systems, but possesses considerable developmental plasticity due to continuous reliance on mobile transcription factors.
机译:植物细胞不能重新排列它们的位置。因此,必须精确地编程清晰的组织边界。细胞命运调节剂SHORT-ROOT从石碑到地面组织的运动与跨组织边界传输位置信息有关。锌指BIRD蛋白JACKDAW被证明可以将SHORT-ROOT的运动限制在一个单层,而其他BIRD家族蛋白则被认为可以抵消JACKDAW在限制SHORT-ROOT作用范围方面的作用。在这里,我们报告说,调节短根运动需要其他BIRD蛋白,其作用对于碑石和地面组织之间的边界的建立和维持至关重要。我们显示BIRD蛋白协同作用而不是相反。利用不对称冗余可以分离两个BIRD功能:通过核保留和主要下游SHORT-ROOT目标(包括SCARECROW和CYCLIND6)的转录调控来限制SHORT-ROOT的传播。我们的数据表明,BIRD蛋白通过束缚和调节SHORT-ROOT复合物的转录能力,促进拟南芥根分生组织地面组织中的形成性分裂和组织规格。结果,像许多动物系统一样,组织边界在初始构图后并未“锁定”,而是由于持续依赖移动转录因子而具有相当大的发育可塑性。

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