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本文引用的文献

1
The anatomy and function of a segment of the X chromosome of Drosophila melanogaster.黑腹果蝇X染色体一段的解剖结构与功能。
Genetics. 1972 May;71(1):139-56. doi: 10.1093/genetics/71.1.139.

黑腹果蝇中两个复杂基因座——朱红眼基因和双胸基因之间的相互作用。

The interaction of two complex loci, zeste and bithorax in Drosophila melanogaster.

作者信息

Kaufman T C, Tasaka S E, Suzuki D T

出版信息

Genetics. 1973 Oct;75(2):299-321. doi: 10.1093/genetics/75.2.299.

DOI:10.1093/genetics/75.2.299
PMID:4203579
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1213011/
Abstract

It has been found that certain alleles of the zeste locus (z(a) 1-1.0) have no phenotype of their own, but interact with certain alleles at the bithorax locus (bx 3-58.8). This interaction takes the form of an enhancement of the homeotic bx phenotype to a more extreme form-i.e., the metathorax is transformed into mesothorax in varying degrees depending on the bx allele used. This enhancement is somewhat reminiscent of the transvection effect described by Lewis (1954). The characterization of the interaction thus far has shown that the enhancement only effects bx alleles which arise spontaneously, whereas the origin of the z(a) allele is unimportant. The gene claret nondisjunctional was used for the production of gynandromorphs which showed that the enhancing ability of z(a), like the eye pigment change caused by z, is autonomous. The enhancement of one specific allele (bx(34e)), which is temperature-sensitive, has allowed a delineation of the temperature-sensitive period of the bithorax locus to a period extending from the middle of the second larval instar to the middle of the third larval instar. These results, as well as those of other enhancer and suppressor systems in Drosophila, have revealed the possibility of the involvement of heterocyclic compounds in the control of cell determination and fate in Drosophila melanogaster.

摘要

已发现某些zeste位点的等位基因(z(a) 1-1.0)自身没有表型,但能与双胸位点的某些等位基因(bx 3-58.8)相互作用。这种相互作用表现为同源异形bx表型增强为更极端的形式,即根据所使用的bx等位基因,后胸会不同程度地转化为中胸。这种增强在某种程度上让人想起Lewis(1954年)描述的转座效应。到目前为止,对这种相互作用的表征表明,这种增强只影响自发产生的bx等位基因,而z(a)等位基因的起源并不重要。使用基因酒红色不分离来产生雌雄嵌合体,这表明z(a)的增强能力,就像由z引起的眼色素变化一样,是自主的。对一个对温度敏感的特定等位基因(bx(34e))的增强,使得双胸位点的温度敏感期被确定为从第二龄幼虫中期到第三龄幼虫中期的一段时间。这些结果,以及果蝇中其他增强子和抑制子系统的结果,揭示了杂环化合物参与果蝇细胞决定和命运控制的可能性。