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首页> 外文期刊>Applied Microbiology >Influence of Host Phylogeographic Patterns and Incomplete Lineage Sorting on Within-Species Genetic Variability in Wigglesworthia Species, Obligate Symbionts of Tsetse Flies
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Influence of Host Phylogeographic Patterns and Incomplete Lineage Sorting on Within-Species Genetic Variability in Wigglesworthia Species, Obligate Symbionts of Tsetse Flies

机译:寄主的体谱模式和不完整的谱系排序对Wigglesworthia物种,采采蝇专性共生物种内部遗传变异的影响。

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Vertical transmission of obligate symbionts generates a predictable evolutionary history of symbionts that reflects that of their hosts. In insects, evolutionary associations between symbionts and their hosts have been investigated primarily among species, leaving population-level processes largely unknown. In this study, we investigated the tsetse (Diptera: Glossinidae) bacterial symbiont, Wigglesworthia glossinidia , to determine whether observed codiversification of symbiont and tsetse host species extends to a single host species ( Glossina fuscipes fuscipes ) in Uganda. To explore symbiont genetic variation in G. f. fuscipes populations, we screened two variable loci ( lon and lepA ) from the Wigglesworthia glossinidia bacterium in the host species Glossina fuscipes fuscipes ( W. g. fuscipes ) and examined phylogeographic and demographic characteristics in multiple host populations. Symbiont genetic variation was apparent within and among populations. We identified two distinct symbiont lineages, in northern and southern Uganda. Incongruence length difference (ILD) tests indicated that the two lineages corresponded exactly to northern and southern G. f. fuscipes mitochondrial DNA (mtDNA) haplogroups ( P = 1.0). Analysis of molecular variance (AMOVA) confirmed that most variation was partitioned between the northern and southern lineages defined by host mtDNA (85.44%). However, ILD tests rejected finer-scale congruence within the northern and southern populations ( P = 0.009). This incongruence was potentially due to incomplete lineage sorting that resulted in novel combinations of symbiont genetic variants and host background. Identifying these novel combinations may have public health significance, since tsetse is the sole vector of sleeping sickness and Wigglesworthia is known to influence host vector competence. Thus, understanding the adaptive value of these host-symbiont combinations may afford opportunities to develop vector control methods.
机译:专性共生体的垂直传播产生了可预测的共生体进化史,反映了其宿主的进化史。在昆虫中,共生体与其寄主之间的进化联系主要在物种之间进行了研究,而种群水平的过程在很大程度上尚不清楚。在这项研究中,我们调查了采采蝇(双翅目:Glossinidae)细菌共生Wigglesworthialossinidia,以确定在乌干达观察到的共生和采采蝇宿主物种的共多样性是否扩展到单个宿主物种(Glossina fuscipes fuscipes)。探索G. f。中的共生体遗传变异。我们在寄主物种Glossina fuscipes fuscipes(W. g。fuscipes)的Wigglesworthia光泽菌中筛选了两个可变基因座(lon和lepA),并检查了多个寄主种群的系统地理和人口统计学特征。共生体的遗传变异在种群内部和种群之间是明显的。我们在乌干达北部和南部发现了两个不同的共生谱系。不一致长度差(ILD)测试表明,这两个谱系正好对应于北部和南部G. f。脓毒症的线粒体DNA(mtDNA)单倍群(P = 1.0)。分子变异分析(AMOVA)证实,大多数变异被宿主mtDNA定义的北部谱系和南部谱系划分(85.44%)。但是,ILD测试拒绝了北部和南部人群的更精细的一致性(P = 0.009)。这种不一致可能是由于谱系分选不完整,导致共生体遗传变异和宿主背景的新颖组合。由于采采蝇是昏睡病的唯一媒介,而已知Wigglesworthia会影响宿主媒介的能力,因此鉴定这些新颖的组合可能具有公共卫生意义。因此,了解这些宿主-共生体组合的适应性值可能为开发矢量控制方法提供机会。

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