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The Intracellular Domain of Dumbfounded Affects Myoblast Fusion Efficiency and Interacts with Rolling Pebbles and Loner

机译:目瞪口呆的细胞内域影响成肌细胞融合效率并与滚石和独来独往的人互动。

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摘要

Drosophila body wall muscles are multinucleated syncytia formed by successive fusions between a founder myoblast and several fusion competent myoblasts. Initial fusion gives rise to a bi/trinucleate precursor followed by more fusion cycles forming a mature muscle. This process requires the functions of various molecules including the transmembrane myoblast attractants Dumbfounded (Duf) and its paralogue Roughest (Rst), a scaffold protein Rolling pebbles (Rols) and a guanine nucleotide exchange factor Loner. Fusion completely fails in a duf, rst mutant, and is blocked at the bi/trinucleate stage in rols and loner single mutants. We analysed the transmembrane and intracellular domains of Duf, by mutating conserved putative signaling sites and serially deleting the intracellular domain. These were tested for their ability to translocate and interact with Rols and Loner and to rescue the fusion defect in duf, rst mutant embryos. Studying combinations of double mutants, further tested the function of Rols, Loner and other fusion molecules. Here we show that serial truncations of the Duf intracellular domain successively compromise its function to translocate and interact with Rols and Loner in addition to affecting myoblast fusion efficiency in embryos. Putative phosphorylation sites function additively while the extreme C terminus including a PDZ binding domain is dispensable for its function. We also show that fusion is completely blocked in a rols, loner double mutant and is compromised in other double mutants. These results suggest an additive function of the intracellular domain of Duf and an early function of Rols and Loner which is independent of Duf.
机译:果蝇的体壁肌肉是由成肌成肌细胞和几个融合感受态成肌细胞之间的连续融合形成的多核合胞体。最初的融合产生了双/三核前体,随后出现了更多的融合周期,形成了成熟的肌肉。这个过程需要各种分子的功能,包括跨膜成肌细胞引诱剂Dumbfounded(Duf)及其旁系动物最粗糙的(Rst),支架蛋白Rolling卵石(Rols)和鸟嘌呤核苷酸交换因子Loner。融合在duf,rst突变体中完全失败,并在rols和loner单突变体的双核/三核阶段受阻。我们通过突变保守的假定信号转导位点和连续删除细胞内域来分析Duf的跨膜和细胞内域。测试了它们移位和与Rols和Loner相互作用以及挽救duf,rst突变体胚胎中融合缺陷的能力。研究双突变体的组合,进一步测试了Rols,Loner和其他融合分子的功能。在这里我们显示,Duf细胞内结构域的连续截断除了影响胚胎中的成肌细胞融合效率外,还会连续损害其功能,使其易位并与Rols和Loner相互作用。假定的磷酸化位点具有附加功能,而包括PDZ结合域的极端C末端因其功能而可有可无。我们还显示,融合在rols,loner双突变体中被完全阻断,在其他双突变体中受损。这些结果表明,Duf的细胞内结构域具有附加功能,而Rols和Loner的早期功能独立于Duf。

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