...
首页> 外文期刊>Molecular Microbiology >Borrelia burgdorferi Borrelia burgdorferi genes, bb0639 bb0639 ‐ 0642 0642 , encode a putative putrescine/spermidine transport system, PotABCD, that is spermidine specific and essential for cell survival
【24h】

Borrelia burgdorferi Borrelia burgdorferi genes, bb0639 bb0639 ‐ 0642 0642 , encode a putative putrescine/spermidine transport system, PotABCD, that is spermidine specific and essential for cell survival

机译:Borrelia Burgdorferi Borrelia Burgdorferi基因,BB0639 BB0639 - 0642 0642编码推定的Putrescine / Fepermidine Transport System,Potabcd,即亚精亚胺,对细胞生存是必不可少的

获取原文
获取原文并翻译 | 示例

摘要

Summary Polyamines are an essential class of metabolites found throughout all kingdoms in life. Borrelia burgdorferi harbors no enzymes to synthesize or degrade polyamines yet does contain a polyamine uptake system, potABCD . In this report, we describe the initial characterization of this putative transport system. After several unsuccessful attempts to inactivate potABCD , we placed the operon under the control of an inducible LacI promoter expression system. Analyses of this construct confirmed that potABCD was required for in vitro survival. Additionally, we demonstrated that the potABCD operon were upregulated in vitro by low osmolarity. Previously, we had shown that low osmolarity triggers the activation of the Rrp2/RpoN/RpoS regulatory cascade, which regulates genes essential for the transmission of spirochetes from ticks to mammalian hosts. Interestingly, induction of the pot operon was only affected in an rpoS mutant but not in a rpoN mutant, suggesting that the genes were RpoS dependent and RpoN independent. Furthermore, potABCD was upregulated during tick feeding concomitant with the initiation of spirochete replication. Finally, uptake experiments determined the specificity of B. burgdorferi 's PotABCD for spermidine.
机译:发明内容多胺是在生活中所有王国中发现的一类基本类代谢物。 Borrelia Burgdorferi Harbors没有合成或降解多胺的酶,但含有多胺摄取系统,POTABCD。在本报告中,我们描述了该推定运输系统的初步表征。经过几次不成功的尝试杂接POTABCD后,我们将操纵子放置在诱导型LACI启动子表达系统的控制下。该构建体的分析证实了在体外存活中需要POTABCD。此外,我们证明POTABCD操纵子通过低渗透性体外上调。以前,我们表明,低渗透性触发了RRP2 / RPON / RPOS调节级联的激活,该级联调节了从蜱虫蜱传播螺旋体传播的基因。有趣的是,罐式操纵子的诱导仅在RPOS突变体中影响,但不在RPON突变体中受到影响,表明基因是RPOS依赖性和RPON独立的。此外,在蜱吞来伴随着螺旋复制的循环饲料期间,在蜱虫期间上调。最后,摄取实验确定了B. Burgdorferi's POTABCD for Fepermidine的特异性。

著录项

  • 来源
    《Molecular Microbiology 》 |2018年第4期| 共11页
  • 作者单位

    Laboratory of BacteriologyRocky Mountain Laboratories National Institute of Allergy and Infectious;

    Laboratory of BacteriologyRocky Mountain Laboratories National Institute of Allergy and Infectious;

    Laboratory of BacteriologyRocky Mountain Laboratories National Institute of Allergy and Infectious;

    Laboratory of BacteriologyRocky Mountain Laboratories National Institute of Allergy and Infectious;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学 ;
  • 关键词

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号