Cripps R M, Becker K D, Mardahl M, Kronert W A, Hodges D, Bernstein S I
Department of Biology, San Diego State University, California 92182-0057.
J Cell Biol. 1994 Aug;126(3):689-99. doi: 10.1083/jcb.126.3.689.
We have transformed Drosophila melanogaster with a genomic construct containing the entire wild-type myosin heavy-chain gene, Mhc, together with approximately 9 kb of flanking DNA on each side. Three independent lines stably express myosin heavy-chain protein (MHC) at approximately wild-type levels. The MHC produced is functional since it rescues the mutant phenotypes of a number of different Mhc alleles: the amorphic allele Mhc1, the indirect flight muscle and jump muscle-specific amorphic allele Mhc10, and the hypomorphic allele Mhc2. We show that the Mhc2 mutation is due to the insertion of a transposable element in an intron of Mhc. Since a reduction in MHC in the indirect flight muscles alters the myosin/actin protein ratio and results in myofibrillar defects, we determined the effects of an increase in the effective copy number of Mhc. The presence of four copies of Mhc results in overabundance of the protein and a flightless phenotype. Electron microscopy reveals concomitant defects in the indirect flight muscles, with excess thick filaments at the periphery of the myofibrils. Further increases in copy number are lethal. These results demonstrate the usefulness and potential of the transgenic system to study myosin function in Drosophila. They also show that overexpression of wild-type protein in muscle may disrupt the function of not only the indirect flight but also other muscles of the organism.
我们用一个基因组构建体转化了黑腹果蝇,该构建体包含完整的野生型肌球蛋白重链基因Mhc,以及两侧各约9 kb的侧翼DNA。三个独立的品系稳定地表达肌球蛋白重链蛋白(MHC),表达水平约为野生型水平。所产生的MHC具有功能,因为它能挽救许多不同Mhc等位基因的突变表型:无义等位基因Mhc1、间接飞行肌和跳跃肌特异性无义等位基因Mhc10,以及亚效等位基因Mhc2。我们表明,Mhc2突变是由于一个转座元件插入到Mhc的一个内含子中。由于间接飞行肌中MHC的减少会改变肌球蛋白/肌动蛋白的蛋白质比例并导致肌原纤维缺陷,我们确定了Mhc有效拷贝数增加的影响。四个拷贝的Mhc的存在导致蛋白质过量和无法飞行的表型。电子显微镜显示间接飞行肌存在相应缺陷,肌原纤维外周有过多的粗肌丝。拷贝数的进一步增加是致死的。这些结果证明了转基因系统在研究果蝇肌球蛋白功能方面的有用性和潜力。它们还表明,肌肉中野生型蛋白的过表达不仅可能破坏间接飞行肌的功能,还可能破坏生物体其他肌肉的功能。