首页> 美国卫生研究院文献>other >The RpoS Gatekeeper in Borrelia burgdorferi: An Invariant Regulatory Scheme That Promotes Spirochete Persistence in Reservoir Hosts and Niche Diversity
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The RpoS Gatekeeper in Borrelia burgdorferi: An Invariant Regulatory Scheme That Promotes Spirochete Persistence in Reservoir Hosts and Niche Diversity

机译:伯氏疏螺旋体中的RpoS关守:一种不变的监管方案可促进储层宿主中的Spirochete持久性和生态位多样性

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摘要

Maintenance of Borrelia burgdorferi within its enzootic cycle requires a complex regulatory pathway involving the alternative σ factors RpoN and RpoS and two ancillary trans-acting factors, BosR and Rrp2. Activation of this pathway occurs within ticks during the nymphal blood meal when RpoS, the effector σ factor, transcribes genes required for tick transmission and mammalian infection. RpoS also exerts a ‘gatekeeper’ function by repressing σ70-dependent tick phase genes (e.g., ospA, lp6.6). Herein, we undertook a broad examination of RpoS functionality throughout the enzootic cycle, beginning with modeling to confirm that this alternative σ factor is a ‘genuine’ RpoS homolog. Using a novel dual color reporter system, we established at the single spirochete level that ospA is expressed in nymphal midguts throughout transmission and is not downregulated until spirochetes have been transmitted to a naïve host. Although it is well established that rpoS/RpoS is expressed throughout infection, its requirement for persistent infection has not been demonstrated. Plasmid retention studies using a trans-complemented ΔrpoS mutant demonstrated that (i) RpoS is required for maximal fitness throughout the mammalian phase and (ii) RpoS represses tick phase genes until spirochetes are acquired by a naïve vector. By transposon mutant screening, we established that bba34/oppA5, the only OppA oligopeptide-binding protein controlled by RpoS, is a bona fide persistence gene. Lastly, comparison of the strain 297 and B31 RpoS DMC regulons identified two cohorts of RpoS-regulated genes. The first consists of highly conserved syntenic genes that are similarly regulated by RpoS in both strains and likely required for maintenance of B. burgdorferi sensu stricto strains in the wild. The second includes RpoS-regulated plasmid-encoded variable surface lipoproteins ospC, dbpA and members of the ospE/ospF/elp, mlp, revA, and Pfam54 paralogous gene families, all of which have evolved via inter- and intra-strain recombination. Thus, while the RpoN/RpoS pathway regulates a ‘core’ group of orthologous genes, diversity within RpoS regulons of different strains could be an important determinant of reservoir host range as well as spirochete virulence.
机译:维持伯氏疏螺旋体在其生化周期内需要复杂的调节途径,该途径涉及替代σ因子RpoN和RpoS以及两个辅助反式作用因子BosR和Rrp2。当效应因子σRpoS转录tick传播和哺乳动物感染所需的基因时,该途径的激活发生在若虫血粉的tick内。 RpoS还通过抑制依赖于σ 70 的壁虱相位基因(例如ospA,lp6.6)发挥“网守”功能。在此,我们从整个建模周期开始对RpoS功能进行了广泛的研究,从建模开始,以确认该替代σ因子是“真正的” RpoS同源物。使用新颖的双色报告系统,我们在单螺旋体水平上确定了ospA在整个传播过程中在若虫中肠中表达,并且直到螺旋体已经传播至幼稚宿主时才被下调。尽管众所周知,rpoS / RpoS在整个感染过程中都能表达,但尚未证明其对持续感染的需求。使用反式互补ΔrpoS突变体进行的质粒保留研究表明(i)RpoS是哺乳动物整个阶段最大适应性所必需的;(ii)RpoS抑制壁虱期基因,直到幼稚的载体获得螺旋体。通过转座子突变体筛选,我们确定bba34 / oppA5是RpoS控制的唯一OppA寡肽结合蛋白,是真正的持久性基因。最后,通过比较297株和B31 RpoS DMC重组子,可以确定RpoS调控基因的两个队列。第一个由高度保守的同系基因组成,在两个菌株中均受到RpoS的类似调节,并且可能是在野外维持B. burgdorferi sensu stricto菌株所需的。第二个包括RpoS调控的质粒编码的可变表面脂蛋白ospC,dbpA以及ospE / ospF / elp,mlp,revA和Pfam54旁系基因家族的成员,所有这些家族都通过和菌株内重组。因此,尽管RpoN / RpoS途径调节了直系同源基因的“核心”组,但不同菌株的RpoS调节子内的多样性可能是决定宿主宿主范围和螺旋体毒力的重要因素。

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