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果蝇肌生成及对鹦鹉螺蛋白作用的见解。

Drosophila myogenesis and insights into the role of nautilus.

作者信息

Abmayr S M, Keller C A

机构信息

Department of Biochemistry and Molecular Biology, Pennsylvania State University, University Park 16802, USA.

出版信息

Curr Top Dev Biol. 1998;38:35-80. doi: 10.1016/s0070-2153(08)60244-6.

Abstract

Several aspects of muscle development appear to be conserved between Drosophila and vertebrate organisms. Among these is the conservation of genes that are critical to the myogenic process, including transcription factors such as nautilus. From a simplistic point of view, Drosophila therefore seems to be a useful organism for the identification of molecules that are essential for myogenesis in both Drosophila and in other species. nautilus, the focal point of this review, appears to be involved in the specification and/or differentiation of a specific subset of muscle founder cells. As with several of its vertebrate and invertebrate counterparts, it is capable of inducing a myogenic program of differentiation reminiscent of that of somatic muscle precursors when expressed in other cell types. We therefore favor the model that nautilus implements the specific differentiation program of these founder cells, rather than their specification. Further analyses are necessary to establish the validity of this working hypothesis. Studies have revealed a critical role for Pax-3 in specifying a particular subset of myogenic cells, the progenitors of the limb muscles. These myogenic cells migrate from the somite into the periphery of the organism, where they differentiate. These myoblasts do not express MyoD or myf5 until they have arrived at their destination and begin the morphologic process of myogenesis (Bober et al., 1994; Goulding et al., 1994; Williams and Ordahl, 1994). They then begin to express these genes, possibly to put the myogenic plan into action. Thus, as with nautilus, MyoD and myf5 may be necessary for the manifestation of a muscle-specific commitment that has already occurred. By comparison with vertebrates, it was anticipated that the single Drosophila gene would serve the purpose of all four vertebrate genes. However, its restricted pattern of expression and apparent loss-of-function phenotype are inconsistent with this expectation. It remains to be determined whether nautilus functions in a manner similar to just one of the vertebrate genes. Since the myf5- and MyoD-expressing myoblasts are proliferative, the loss of one cell type appears to be compensated by proliferation of the remaining cell type. This apparent plasticity may obscure differences in mutant phenotype resulting from the loss of particular cells that express each of these genes. In Drosophila, by comparison, nautilus-expressing cells committed to the myogenic program undergo few, if any, additional cell divisions, and thus no other cells are available to compensate for the loss of nautilus. Therefore, the apparent differences between the Drosophila nautilus gene and its vertebrate counterparts may reflect, at least in part, differences in the developmental systems rather than differences in the function of the genes themselves.

摘要

果蝇和脊椎动物机体在肌肉发育的几个方面似乎是保守的。其中包括对成肌过程至关重要的基因的保守性,这些基因包括转录因子,如鹦鹉螺基因。从简单的角度来看,果蝇似乎是一种有用的生物体,可用于鉴定对果蝇和其他物种的肌生成必不可少的分子。鹦鹉螺基因是本综述的重点,似乎参与了特定肌肉前体细胞亚群的特化和/或分化。与其一些脊椎动物和无脊椎动物的对应基因一样,当在其他细胞类型中表达时,它能够诱导出类似于体肌前体细胞的成肌分化程序。因此,我们倾向于这样一种模型,即鹦鹉螺基因执行这些前体细胞的特定分化程序,而不是它们的特化。需要进一步分析来确定这个工作假设的有效性。研究表明,Pax-3在指定特定的成肌细胞亚群(肢体肌肉的祖细胞)中起关键作用。这些成肌细胞从体节迁移到机体的外周,在那里它们分化。这些成肌细胞在到达目的地并开始成肌的形态学过程之前不表达MyoD或myf5(博伯等人,1994年;古尔丁等人,1994年;威廉姆斯和奥尔达尔,1994年)。然后它们开始表达这些基因,可能是为了实施成肌计划。因此,与鹦鹉螺基因一样,MyoD和myf5可能是已经发生的肌肉特异性承诺表现所必需的。与脊椎动物相比,预计果蝇的单个基因将起到所有四个脊椎动物基因的作用。然而,其有限的表达模式和明显的功能丧失表型与这一预期不一致。鹦鹉螺基因是否以类似于脊椎动物基因之一的方式发挥作用还有待确定。由于表达myf5和MyoD的成肌细胞具有增殖能力,一种细胞类型的丧失似乎由其余细胞类型的增殖来补偿。这种明显的可塑性可能掩盖了由于表达这些基因的特定细胞丧失而导致的突变体表型差异。相比之下,在果蝇中,致力于成肌程序的表达鹦鹉螺基因的细胞很少进行额外的细胞分裂,如果有的话,因此没有其他细胞可用于补偿鹦鹉螺基因的丧失。因此,果蝇鹦鹉螺基因与其脊椎动物对应基因之间的明显差异可能至少部分反映了发育系统的差异,而不是基因本身功能的差异。

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