Mangan E K, Bartamian M, Gober J W
Department of Chemistry and Biochemistry, University of California, Los Angeles 90095-1569, USA.
J Bacteriol. 1995 Jun;177(11):3176-84. doi: 10.1128/jb.177.11.3176-3184.1995.
The transcription of flagellar genes in Caulobacter crescentus is regulated by cell cycle events that culminate in the synthesis of a new flagellum once every cell division. Early flagellar gene products regulate the expression of late flagellar genes at two distinct stages of the flagellar trans-acting hierarchy. Here we investigate the coupling of early flagellar biogenesis with middle and late flagellar gene expression. We have isolated mutants (bfa) that do not require early class II flagellar gene products for the transcription of middle or late flagellar genes. bfa mutant strains are apparently defective in a negative regulatory pathway that couples early flagellar biogenesis to late flagellar gene expression. The bfa regulatory pathway functions solely at the level of transcription. Although flagellin promoters are transcribed in class II/bfa double mutants, there is no detectable flagellin protein on immunoblots prepared from mutant cell extracts. This finding suggests that early flagellar biogenesis is coupled to gene expression by two distinct mechanisms: one that negatively regulates transcription, mediated by bfa, and another that functions posttranscriptionally. To determine whether bfa affects the temporal pattern of late flagellar gene expression, cell cycle experiments were performed in bfa mutant strains. In a bfa mutant strain, flagellin expression fails to shut off at its normal time in the cell division cycle. This experimental result indicates that bfa may function as a regulator of flagellar gene transcription late in the cell cycle, after early flagellar structures have been assembled.
新月柄杆菌中鞭毛基因的转录受细胞周期事件调控,这些事件最终导致每一次细胞分裂合成一根新的鞭毛。早期鞭毛基因产物在鞭毛反式作用层级的两个不同阶段调节晚期鞭毛基因的表达。在此,我们研究早期鞭毛生物合成与中期和晚期鞭毛基因表达之间的耦合关系。我们分离出了一些突变体(bfa),这些突变体在转录中期或晚期鞭毛基因时不需要早期II类鞭毛基因产物。bfa突变株在将早期鞭毛生物合成与晚期鞭毛基因表达耦合的负调控途径中显然存在缺陷。bfa调控途径仅在转录水平起作用。虽然鞭毛蛋白启动子在II类/bfa双突变体中被转录,但从突变体细胞提取物制备的免疫印迹上没有可检测到的鞭毛蛋白。这一发现表明,早期鞭毛生物合成通过两种不同机制与基因表达耦合:一种是由bfa介导的对转录进行负调控,另一种是在转录后起作用。为了确定bfa是否影响晚期鞭毛基因表达的时间模式,我们在bfa突变株中进行了细胞周期实验。在一个bfa突变株中,鞭毛蛋白表达在细胞分裂周期的正常时间未能关闭。这一实验结果表明,bfa可能在细胞周期后期、早期鞭毛结构组装完成后,作为鞭毛基因转录的调节因子发挥作用。