Zhang Yonghong, Zheng Lanlan, Hong Jing Han, Gong Ximing, Zhou Chun, Pérez-Pérez José Manuel, Xu Jian
National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China (Y.Z., L.Z., C.Z.);Department of Biological Sciences and NUS Centre for BioImaging Sciences, National University of Singapore, Singapore 117543 (J.H.H., X.G., J.X.); andInstituto de Bioingeniería, Universidad Miguel Hernández, 03202 Elche, Spain (J.M.P.-P.).
National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China (Y.Z., L.Z., C.Z.);Department of Biological Sciences and NUS Centre for BioImaging Sciences, National University of Singapore, Singapore 117543 (J.H.H., X.G., J.X.); andInstituto de Bioingeniería, Universidad Miguel Hernández, 03202 Elche, Spain (J.M.P.-P.)
Plant Physiol. 2016 May;171(1):483-93. doi: 10.1104/pp.15.01754. Epub 2016 Mar 11.
TOPOISOMERASE1 (TOP1), which releases DNA torsional stress generated during replication through its DNA relaxation activity, plays vital roles in animal and plant development. In Arabidopsis (Arabidopsis thaliana), TOP1 is encoded by two paralogous genes (TOP1α and TOP1β), of which TOP1α displays specific developmental functions that are critical for the maintenance of shoot and floral stem cells. Here, we show that maintenance of two different populations of root stem cells is also dependent on TOP1α-specific developmental functions, which are exerted through two distinct novel mechanisms. In the proximal root meristem, the DNA relaxation activity of TOP1α is critical to ensure genome integrity and survival of stele stem cells (SSCs). Loss of TOP1α function triggers DNA double-strand breaks in S-phase SSCs and results in their death, which can be partially reversed by the replenishment of SSCs mediated by ETHYLENE RESPONSE FACTOR115 In the quiescent center and root cap meristem, TOP1α is epistatic to RETINOBLASTOMA-RELATED (RBR) in the maintenance of undifferentiated state and the number of columella stem cells (CSCs). Loss of TOP1α function in either wild-type or RBR RNAi plants leads to differentiation of CSCs, whereas overexpression of TOP1α mimics and further enhances the effect of RBR reduction that increases the number of CSCs Taken together, these findings provide important mechanistic insights into understanding stem cell maintenance in plants.
拓扑异构酶1(TOP1)通过其DNA松弛活性释放复制过程中产生的DNA扭转应力,在动植物发育中发挥着至关重要的作用。在拟南芥中,TOP1由两个旁系同源基因(TOP1α和TOP1β)编码,其中TOP1α具有特定的发育功能,对茎尖和花干细胞的维持至关重要。在这里,我们表明,两种不同类型的根干细胞群体的维持也依赖于TOP1α特定的发育功能,这是通过两种不同的新机制发挥作用的。在近端根分生组织中,TOP1α的DNA松弛活性对于确保中柱干细胞(SSCs)的基因组完整性和存活至关重要。TOP1α功能的丧失会触发S期SSCs中的DNA双链断裂并导致其死亡,而乙烯反应因子115介导的SSCs补充可以部分逆转这种死亡。在静止中心和根冠分生组织中,TOP1α在维持未分化状态和根冠干细胞(CSCs)数量方面对视网膜母细胞瘤相关蛋白(RBR)具有上位性。野生型或RBR RNA干扰植物中TOP1α功能的丧失会导致CSCs分化,而TOP1α的过表达模拟并进一步增强了RBR减少的效果,增加了CSCs的数量。综上所述,这些发现为理解植物干细胞的维持提供了重要的机制性见解。