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玉米调控基因B-Peru含有一种DNA重排,该重排通过正向和负向启动子元件来指定组织特异性表达。

The maize regulatory gene B-Peru contains a DNA rearrangement that specifies tissue-specific expression through both positive and negative promoter elements.

作者信息

Selinger D A, Lisch D, Chandler V L

机构信息

Department of Plant Sciences, University of Arizona, Tucson, Arizona, 85721, USA.

出版信息

Genetics. 1998 Jun;149(2):1125-38. doi: 10.1093/genetics/149.2.1125.

Abstract

The B-Peru allele of the maize b regulatory gene is unusual relative to most b alleles in that it is expressed in the aleurone layer of the seed. It is also expressed in a subset of plant vegetative tissues. Transgenic maize plants containing the B-Peru gene with the first 710 bases of upstream sequence conferred the same levels of aleurone expression as nontransgenic B-Peru plants, but no pigment was made in vegetative tissues. Transient transformation assays in aleurone tissue localized the aleurone-specific promoter to the first 176 bases of the B-Peru upstream region and identified two critically important regions within this fragment. Mutation of either region alone reduced expression greater than fivefold. Surprisingly, the double mutation actually increased expression to twice the native promoter level. Our results suggest that these two critical sequences, which lie close together in the promoter, may form a negative regulatory element. Several lines of evidence suggest that the B-Peru promoter arose through the translocation of an existing aleurone-specific promoter to the b locus. Immediately upstream of the aleurone-specific promoter elements and in the opposite orientation to the b coding sequence is a pseudogene sequence with strong similarity to a known class of proteins. Our findings that novel aleurone-specific promoter sequences of the B-Peru transcription factor are found adjacent to part of another gene in a small insertion are quite unexpected and have interesting evolutionary implications.

摘要

玉米b调控基因的B-Peru等位基因与大多数b等位基因不同,它在种子的糊粉层中表达,也在植物营养组织的一个子集中表达。含有带有710个上游序列碱基的B-Peru基因的转基因玉米植株,其糊粉层表达水平与非转基因B-Peru植株相同,但在营养组织中不产生色素。在糊粉组织中的瞬时转化试验将糊粉层特异性启动子定位到B-Peru上游区域的前176个碱基,并在该片段中鉴定出两个至关重要的区域。单独突变任何一个区域都会使表达降低超过五倍。令人惊讶的是,双重突变实际上使表达增加到天然启动子水平的两倍。我们的结果表明,这两个紧密相邻的关键序列可能形成一个负调控元件。几条证据表明,B-Peru启动子是通过将现有的糊粉层特异性启动子易位到b位点而产生的。在糊粉层特异性启动子元件的紧上游且与b编码序列方向相反的是一个与一类已知蛋白质有高度相似性的假基因序列。我们发现B-Peru转录因子新的糊粉层特异性启动子序列在一个小插入中与另一个基因的一部分相邻,这是相当出乎意料的,并且具有有趣的进化意义。

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