Khosla Meenal, Kriebel Paul, Parent Carole A, Spiegelman George B, Weeks Gerald
Department of Microbiology and Immunology, University of British Columbia, Vancouver, BC, Canada V6T 1Z3.
Dev Biol. 2006 Apr 1;292(1):68-78. doi: 10.1016/j.ydbio.2005.12.051. Epub 2006 Feb 21.
The disruption of the gene encoding the Dictyostelium Ras subfamily protein, RasC, results in a strain that does not aggregate and has defects in both cAMP signal relay and cAMP chemotaxis. Disruption of a second gene in the rasC(-) strain by Restriction Enzyme Mediated Integration produced cells that were capable of forming multicellular structures in plaques on bacterial lawns. The disrupted gene (dmpA) encoded a novel membrane protein that was designated Dmp1. Although the rasC(-)/dmpA(-) cells progressed through early development, they did not form aggregation streams on a plastic surface under submerged starvation conditions. Phosphorylation of PKB in response to cAMP, which is significantly reduced in rasC(-) cells, remained low in the rasC(-)/dmpA(-) cells. However, in spite of this low PKB phosphorylation, the rasC(-)/dmpA(-) cells underwent efficient chemotaxis to cAMP in a spatial gradient. Cyclic AMP accumulation, which was greatly reduced in the rasC(-) cells, was restored in the rasC(-)/dmpA(-) strain, but cAMP relay in these cells was not apparent. These data indicate that although the rasC(-)/dmpA(-) cells were capable of associating to form multicellular structures, normal aggregative cell signaling was clearly not restored. Disruption of the dmpA gene in a wild-type background resulted in cells that exhibited a slight defect in aggregation and a more substantial defect in late development. These results indicate that, in addition to the role played by Dmp1 in aggregation, it is also involved in late development.
编码盘基网柄菌Ras亚家族蛋白RasC的基因被破坏后,会产生一种无法聚集的菌株,该菌株在cAMP信号传递和cAMP趋化性方面均存在缺陷。通过限制酶介导整合破坏rasC(-)菌株中的第二个基因后,产生了能够在细菌 lawns上的菌斑中形成多细胞结构的细胞。被破坏的基因(dmpA)编码一种新的膜蛋白,命名为Dmp1。尽管rasC(-)/dmpA(-)细胞能够完成早期发育,但在水下饥饿条件下,它们在塑料表面上并未形成聚集流。响应cAMP时PKB的磷酸化在rasC(-)细胞中显著降低,在rasC(-)/dmpA(-)细胞中仍然很低。然而,尽管PKB磷酸化水平较低,rasC(-)/dmpA(-)细胞在空间梯度中对cAMP仍能进行有效的趋化作用。在rasC(-)细胞中大幅减少的cAMP积累在rasC(-)/dmpA(-)菌株中得以恢复,但这些细胞中的cAMP信号传递并不明显。这些数据表明,尽管rasC(-)/dmpA(-)细胞能够相互结合形成多细胞结构,但正常的聚集细胞信号显然并未恢复。在野生型背景下破坏dmpA基因会导致细胞在聚集方面表现出轻微缺陷,在后期发育中存在更严重的缺陷。这些结果表明,除了Dmp1在聚集中所起的作用外,它还参与后期发育。