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一种丝裂原活化蛋白激酶在植物有丝分裂后期被激活,并定位于细胞分裂平面。

A MAP kinase is activated late in plant mitosis and becomes localized to the plane of cell division.

作者信息

Bögre L, Calderini O, Binarova P, Mattauch M, Till S, Kiegerl S, Jonak C, Pollaschek C, Barker P, Huskisson N S, Hirt H, Heberle-Bors E

机构信息

Vienna Biocenter, Institute of Microbiology and Genetics, University of Vienna, Dr. Bohrgasse 9, A-1030 Vienna, Austria.

出版信息

Plant Cell. 1999 Jan;11(1):101-13.

Abstract

In eukaryotes, mitogen-activated protein kinases (MAPKs) are part of signaling modules that transmit diverse stimuli, such as mitogens, developmental cues, or various stresses. Here, we report a novel alfalfa MAPK, Medicago MAP kinase 3 (MMK3). Using an MMK3-specific antibody, we detected the MMK3 protein and its associated activity only in dividing cells. The MMK3 protein could be found during all stages of the cell cycle, but its protein kinase activity was transient in mitosis and correlated with the timing of phragmoplast formation. Depolymerization of microtubules by short treatments with the drug amiprophosmethyl during anaphase and telophase abolished MMK3 activity, indicating that intact microtubules are required for MMK3 activation. During anaphase, MMK3 was found to be concentrated in between the segregating chromosomes; later, it localized at the midplane of cell division in the phragmoplast. As the phragmoplast microtubules were redistributed from the center to the periphery during telophase, MMK3 still localized to the whole plane of division; thus, phragmoplast microtubules are not required to keep MMK3 at this location. Together, these data strongly support a role for MMK3 in the regulation of plant cytokinesis.

摘要

在真核生物中,丝裂原活化蛋白激酶(MAPK)是信号传导模块的一部分,可传递多种刺激信号,如丝裂原、发育信号或各种应激信号。在此,我们报道了一种新型苜蓿MAPK,即苜蓿丝裂原活化蛋白激酶3(MMK3)。使用MMK3特异性抗体,我们仅在分裂细胞中检测到了MMK3蛋白及其相关活性。MMK3蛋白在细胞周期的所有阶段均可发现,但其蛋白激酶活性在有丝分裂过程中是短暂的,并且与成膜体形成的时间相关。在后期和末期用药物甲基胺草磷进行短时间处理使微管解聚,消除了MMK3活性,表明完整的微管是MMK3激活所必需的。在后期,发现MMK3集中在分离的染色体之间;随后,它定位于成膜体中细胞分裂的中平面。在末期,当成膜体微管从中心重新分布到周边时,MMK3仍定位于整个分裂平面;因此,成膜体微管并非将MMK3保持在该位置所必需的。总之,这些数据有力地支持了MMK3在植物胞质分裂调控中的作用。

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