Keller C A, Grill M A, Abmayr S M
Department of Biochemistry and Molecular Biology, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Dev Biol. 1998 Oct 15;202(2):157-71. doi: 10.1006/dbio.1998.9009.
In the Drosophila embryo, nautilus is expressed in a subset of muscle precursors and differentiated fibers and is capable of inducing muscle-specific transcription, as well as myogenic transformation. In this study, we examine the consequences of nautilus loss-of-function on the development of the somatic musculature. Genetic and molecular characterization of two overlapping deficiencies, Df(3R)nau-9 and Df(3R)nau-11a4, revealed that both of these deficiencies remove the nautilus gene without affecting a common lethal complementation group. Individuals transheterozygous for these deficiencies survive to adulthood, indicating that nautilus is not an essential gene. These embryos are, however, missing a subset of muscle fibers, providing evidence that (1) some muscle loss can be tolerated throughout larval development and (2) nautilus does play a role in muscle development. Examination of muscle precursors in these embryos revealed that nautilus is not required for the formation of muscle precursors, but rather plays a role in their differentiation into mature muscle fibers. Thus, we suggest that nautilus functions in a subset of muscle precursors to implement their specific differentiation programs.
在果蝇胚胎中,鹦鹉螺蛋白在一部分肌肉前体细胞和分化的纤维中表达,并且能够诱导肌肉特异性转录以及肌源性转化。在本研究中,我们研究了鹦鹉螺蛋白功能丧失对体壁肌肉组织发育的影响。对两个重叠缺失品系Df(3R)nau - 9和Df(3R)nau - 11a4进行遗传和分子特征分析,结果表明这两个缺失品系均删除了鹦鹉螺蛋白基因,且不影响一个共同的致死互补群。这些缺失品系的反式杂合个体能够存活至成年期,这表明鹦鹉螺蛋白不是一个必需基因。然而,这些胚胎缺失了一部分肌肉纤维,这证明了:(1)在整个幼虫发育过程中,一些肌肉损失是可以耐受的;(2)鹦鹉螺蛋白在肌肉发育中确实发挥了作用。对这些胚胎中的肌肉前体细胞进行检查发现,鹦鹉螺蛋白对于肌肉前体细胞的形成不是必需的,而是在它们分化为成熟肌肉纤维的过程中发挥作用。因此,我们认为鹦鹉螺蛋白在一部分肌肉前体细胞中发挥作用,以实施它们特定的分化程序。