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拟南芥 MCM2 基因对于胚胎发育是必需的,其过表达改变了根分生组织的功能。

The Arabidopsis MCM2 gene is essential to embryo development and its over-expression alters root meristem function.

机构信息

Institut de Biotechnologie des Plantes (UMR8618), Université Paris-XI, 91405 Orsay, France.

Department of Genetics and Microbiology, University of Pavia, Via Ferrata 1, 27100 Pavia, Italy.

出版信息

New Phytol. 2009 Oct;184(2):311-322. doi: 10.1111/j.1469-8137.2009.02961.x. Epub 2009 Jul 24.

DOI:10.1111/j.1469-8137.2009.02961.x
PMID:19650778
Abstract
  • Minichromosome maintenance (MCM) proteins are subunits of the pre-replication complex that probably function as DNA helicases during the S phase of the cell cycle. Here, we investigated the function of AtMCM2 in Arabidopsis. * To gain an insight into the function of AtMCM2, we combined loss- and gain-of-function approaches. To this end, we analysed two null alleles of AtMCM2, and generated transgenic plants expressing AtMCM2 downstream of the constitutive 35S promoter. * Disruption of AtMCM2 is lethal at a very early stage of embryogenesis, whereas its over-expression results in reduced growth and inhibition of endoreduplication. In addition, over-expression of AtMCM2 induces the formation of additional initials in the columella root cap. In the plt1,2 mutant, defective for root apical meristem maintenance, over-expression of AtMCM2 induces lateral root initiation close to the root tip, a phenotype not reported in the wild-type or in plt1,2 mutants, even when cell cycle regulators, such as AtCYCD3;1, were over-expressed. * Taken together, our results provide evidence for the involvement of AtMCM2 in DNA replication, and suggest that it plays a crucial role in root meristem function.
摘要

微染色体维持(MCM)蛋白是复制前复合物的亚基,可能在细胞周期的 S 期作为 DNA 解旋酶发挥作用。在这里,我们研究了拟南芥中的 AtMCM2 功能。

为了深入了解 AtMCM2 的功能,我们结合了缺失和功能获得的方法。为此,我们分析了 AtMCM2 的两个 null 等位基因,并生成了在组成型 35S 启动子下游表达 AtMCM2 的转基因植物。

AtMCM2 的破坏在胚胎发生的早期阶段是致命的,而其过表达导致生长减缓并抑制内复制。此外,AtMCM2 的过表达诱导柱形根冠额外初始细胞的形成。在 plt1,2 突变体中,根顶端分生组织维持缺陷,AtMCM2 的过表达诱导根尖附近的侧根起始,这种表型在野生型或 plt1,2 突变体中均未报道,即使过表达细胞周期调节剂,如 AtCYCD3;1。

综上所述,我们的结果提供了 AtMCM2 参与 DNA 复制的证据,并表明它在根分生组织功能中起着至关重要的作用。

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