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Acidic phospholipid deficiency results in an inhibition of chromosomal replication and cell-cycle specific arrest in Escherichia coli.

机译:酸性磷脂缺乏导致大肠杆菌中染色体复制的抑制和细胞周期特异性停滞。

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摘要

Beyond the simplistic function as an environmental barrier, lipids have a variety of functions. The wealth of knowledge available on Escherichia coli (E. coli), and its small subset of lipid species, makes it an ideal organism to study lipid function. In E. coli, acidic phospholipids (aPLs) have been suggested to be uniquely important for chromosomal replication among phospholipids, since growth-arrest caused by depletion of aPLs is rescued by bypassing normal mechanisms for initiating replication.;In E. coli coordinated activation and deactivation of DnaA promotes proper timing of the initiation of chromosomal synthesis at the origin of replication (oriC), assuring occurrence once per cell-cycle. In vitro, aPLs reactivate DnaA, and in vivo aPL depletion results in growth-arrest. Growth is restored by the expression of a mutant DnaA, DnaA(L366K), or through oriC-independent initiation, suggesting aPLs participate in DnaA-oriC-dependent replication initiation. Although compelling, a gap remained linking these studies with aPLs influencing the frequency of initiation in vivo. Moreover, aPLs have also been suggested to influence cell division; therefore, their role in the overall cell-cycle was unclear. I hypothesized that aPLs are required for initiation-dependent cell-cycle progression in E. coli. The role of aPLs in cell-cycle progression and DNA replication was assessed in E. coli with inducible control of aPL production using flow cytometry, chromosomal labeling, and quantitative polymerase chain reaction (qPCR).;We found when aPLs were depleted, replication was inhibited with a concomitant reduction of chromosomal content and cell mass prior to growth-arrest, showing aPLs are required for normal initiation frequency and that inhibition contributed towards growth-arrest. The observed biosynthetic shutdown was independent of the stringent response, which elicits a similar phenotype during inhibition of fatty acid synthesis. Restoration of aPLs resulted in a resumption of DNA replication prior to division, indicating a cell-cycle-specific growth-arrest had occurred. Independently, each technique showed a deficiency in aPLs prolonged chromosomal replication. Expression of DnaA(L366K) lowers the DNA-to-cell mass ratio regardless of aPL cellular content, suggesting initiation activity of DnaA(L366K) is independent of aPL-reactivation. This work not only demonstrates that aPLs are required for oriC-dependent replication initiation and cell-cycle-specific progression, but likely also DNA elongation.
机译:除了作为环境屏障的简单功能之外,脂质还具有多种功能。大肠杆菌(E. coli)及其少量脂质种类的丰富知识使其成为研究脂质功能的理想生物。在大肠杆菌中,酸性磷脂(aPL)被认为对磷脂之间的染色体复制具有独特的重要性,因为通过绕过启动复制的正常机制可以挽救由aPL耗尽引起的生长停滞。 DnaA的失活促进了复制起点(oriC)染色体合成启动的正确时机,确保每个细胞周期发生一次。在体外,aPL重新激活DnaA,而体内aPL耗尽会导致生长停滞。通过突变体DnaA,DnaA(L366K)的表达或通过oriC依赖性启动来恢复生长,这表明aPL参与了DnaA-oriC依赖性复制启动。尽管令人信服,但仍存在差距,这些研究与影响体内起始频率的aPLs保持联系。此外,还提出了aPL影响细胞分裂。因此,它们在整个细胞周期中的作用尚不清楚。我假设在大肠杆菌中依赖启动子的细胞周期进程需要aPL。使用流式细胞仪,染色体标记和定量聚合酶链反应(qPCR)在大肠杆菌中通过诱导性控制aPL的产生来评估aPL在细胞周期进程和DNA复制中的作用;我们发现当aPL耗尽时,复制是被抑制后,伴随着染色体含量和细胞量的减少而被抑制,这表明正常起始频率需要aPL,并且抑制作用促进了被抑制。观察到的生物合成关闭与严格的响应无关,其在脂肪酸合成抑制过程中引起相似的表型。 aPLs的恢复导致分裂前DNA复制的恢复,表明已经发生了细胞周期特异性的生长停滞。独立地,每种技术显示aPLs延长染色体复制的缺陷。 DnaA(L366K)的表达降低了DNA与细胞的质量比,而与aPL细胞的含量无关,这表明DnaA(L366K)的起始活性与aPL的重新激活无关。这项工作不仅证明了aPL是oriC依赖性复制起始和细胞周期特异性进程所必需的,而且可能还包括DNA延伸。

著录项

  • 作者

    Fingland, Nicholas K.;

  • 作者单位

    Georgetown University.;

  • 授予单位 Georgetown University.;
  • 学科 Biology Molecular.;Biology Microbiology.;Chemistry Biochemistry.;Biology Cell.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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