Vidya S, Kamalakar B Praveen, Munavar M Hussain, Kumar L Sathish, Jayaraman R
Department of Genetics, SW Foundation for Biomedical Research, San Antonio, TX 78245-0549, USA.
J Biosci. 2006 Mar;31(1):31-45. doi: 10.1007/BF02705233.
The temperature sensitive transcription defective mutant of Escherichia coli originally called fitA76 has been shown to harbour two missense mutations namely pheS5 and fit95. In order to obtain a suppressor of fitA76, possibly mapping in rpoD locus, a Ts+ derivative (JV4) was isolated from a fitA76 mutant. It was found that JV4 neither harbours the lesions present in the original fitA76 nor a suppressor that maps in or near rpoD. We show that JV4 harbours a modified form of fitA76 (designated fitA76*) together with its suppressor. The results presented here indicate that the fit95 lesion is intact in the fitA76* mutant and the modification should be at the position of pheS5. Based on the cotransduction of the suppressor mutation and/or its wild type allele with pps, aroD and zdj-3124::Tn10 kan we have mapped its location to 39.01 min on the E. coli chromosome. We tentatively designate the locus defined by this new extragenic suppressor as fitC and the suppressor allele as fitC4. While fitC4 could suppress the Ts phenotype of fitA76* present in JV4, it fails to suppress the Ts phenotype of the original fitA76 mutant (harbouring pheS5 and fit95). Also fitC4 could suppress the Ts phenotype of a strain harbouring only pheS5. Interestingly, the fitC4 Ts phenotype could also be suppressed by fit95. The pattern of decay of pulse labelled RNA in the strains harbouring fitC4 and the fitA76* resembles that of the original fitA76 mutant implying a transcription defect similar to that of fitA76 in both these mutants. The implications of these findings with special reference to transcription control by Fit factors in vivo are discussed.
最初被称为fitA76的大肠杆菌温度敏感转录缺陷型突变体已被证明含有两个错义突变,即pheS5和fit95。为了获得可能定位于rpoD位点的fitA76抑制子,从fitA76突变体中分离出一个Ts +衍生物(JV4)。发现JV4既不含有原始fitA76中存在的损伤,也不含有定位于rpoD内或其附近的抑制子。我们表明JV4含有fitA76的一种修饰形式(命名为fitA76*)及其抑制子。此处给出的结果表明,fit95损伤在fitA76突变体中是完整的,并且修饰应该在pheS5的位置。基于抑制子突变和/或其野生型等位基因与pps、aroD和zdj - 3124::Tn10 kan的共转导,我们已将其位置定位到大肠杆菌染色体上的39.01分钟处。我们暂时将由这个新的基因外抑制子定义的位点命名为fitC,抑制子等位基因命名为fitC4。虽然fitC4可以抑制JV4中存在的fitA76的Ts表型,但它不能抑制原始fitA76突变体(含有pheS5和fit95)的Ts表型。同样,fitC4可以抑制仅含有pheS5的菌株的Ts表型。有趣的是,fit95也可以抑制fitC4的Ts表型。含有fitC4和fitA76*的菌株中脉冲标记RNA的衰变模式类似于原始fitA76突变体,这意味着这两个突变体中都存在类似于fitA76的转录缺陷。本文讨论了这些发现对于体内Fit因子转录控制的特殊意义。