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MADS盒转录因子对矮牵牛花分生组织确定性的调控

Control of floral meristem determinacy in petunia by MADS-box transcription factors.

作者信息

Ferrario Silvia, Shchennikova Anna V, Franken John, Immink Richard G H, Angenent Gerco C

机构信息

Plant Research International, Business Unit Bioscience, Wageningen, The Netherlands.

出版信息

Plant Physiol. 2006 Mar;140(3):890-8. doi: 10.1104/pp.105.072660. Epub 2006 Jan 20.

Abstract

The shoot apical meristem (SAM), a small group of undifferentiated dividing cells, is responsible for the continuous growth of plants. Several genes have been identified that control the development and maintenance of the SAM. Among these, WUSCHEL (WUS) from Arabidopsis (Arabidopsis thaliana) is thought to be required for maintenance of a stem cell pool in the SAM. The MADS-box gene AGAMOUS, in combination with an unknown factor, has been proposed as a possible negative regulator of WUS, leading to the termination of meristematic activity within the floral meristem. Transgenic petunia (Petunia hybrida) plants were produced in which the E-type and D-type MADS-box genes FLORAL BINDING PROTEIN2 (FBP2) and FBP11, respectively, are simultaneously overexpressed. These plants show an early arrest in development at the cotyledon stage. Molecular analysis of these transgenic plants revealed a possible combined action of FBP2 and FBP11 in repressing the petunia WUS homolog, TERMINATOR. Furthermore, the ectopic up-regulation of the C-type and D-type homeotic genes FBP6 and FBP7, respectively, suggests that they may also participate in a complex, which causes the determinacy in transgenic plants. These data support the model that a transcription factor complex consisting of C-, D-, and E-type MADS-box proteins controls the stem cell population in the floral meristem.

摘要

茎尖分生组织(SAM)是一小群未分化的分裂细胞,负责植物的持续生长。已经鉴定出几个控制SAM发育和维持的基因。其中,拟南芥中的WUSCHEL(WUS)被认为是维持SAM中干细胞库所必需的。MADS-box基因AGAMOUS与一个未知因子相结合,被认为可能是WUS的负调节因子,导致花分生组织内分生组织活性的终止。构建了转基因矮牵牛植株,其中E型和D型MADS-box基因分别为花结合蛋白2(FBP2)和FBP11同时过表达。这些植株在子叶期发育早期停滞。对这些转基因植株的分子分析揭示了FBP2和FBP11在抑制矮牵牛WUS同源基因TERMINATOR方面可能存在联合作用。此外,C型和D型同源异型基因FBP6和FBP7的异位上调表明它们也可能参与一个复合体,该复合体导致转基因植株的确定性。这些数据支持了由C型、D型和E型MADS-box蛋白组成的转录因子复合体控制花分生组织中干细胞群体的模型。

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