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Efficient Gene Transfer in Bacterial Cell Chains

机译:细菌细胞链中的有效基因转移

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Horizontal gene transfer contributes to evolution and the acquisition of new traits. In bacteria, horizontal gene transfer is often mediated by conjugative genetic elements that transfer directly from cell to cell. Integrative and conjugative elements (ICEs; also known as conjugative transposons) are mobile genetic elements that reside within a host genome but can excise to form a circle and transfer by conjugation to recipient cells. ICEs contribute to the spread of genes involved in pathogenesis, symbiosis, metabolism, and antibiotic resistance. Despite its importance, little is known about the mechanisms of conjugation in Gram-positive bacteria or how quickly or frequently transconjugants become donors. We visualized the transfer of the integrative and conjugative element ICEBs1 from a Bacillus subtilis donor to recipient cells in real time using fluorescence microscopy. We found that transfer of DNA from a donor to a recipient appeared to occur at a cell pole or along the lateral cell surface of either cell. Most importantly, we found that when acquired by 1?cell in a chain, ICEBs1 spread rapidly from cell to cell within the chain by additional sequential conjugation events. This intrachain conjugation is inherently more efficient than conjugation that is due to chance encounters between individual cells. Many bacterial species, including pathogenic, commensal, symbiotic, and nitrogen-fixing organisms, harbor ICEs and grow in chains, often as parts of microbial communities. It is likely that efficient intrachain spreading is a general feature of conjugative DNA transfer and serves to amplify the number of cells that acquire conjugative mobile genetic elements. >IMPORTANCE Conjugative elements contribute to horizontal gene transfer and the acquisition of new traits. They are largely responsible for spreading antibiotic resistance in bacterial communities. To study the cell biology of conjugation, we visualized conjugative DNA transfer between Bacillus?subtilis cells in real time using fluorescence microscopy. In contrast to previous predictions that transfer would occur preferentially from the donor cell pole, we found that transfer of DNA from a donor to a recipient appeared to occur at a cell pole or along the lateral cell surface of either cell. Most importantly, we found that when acquired by 1?cell in a chain, the conjugative DNA spread rapidly from cell to cell within the chain through sequential conjugation events. Since many bacterial species grow naturally in chains, this intrachain transfer is likely a common mechanism for accelerating the spread of conjugative elements within microbial communities.
机译:水平基因转移有助于进化和获得新性状。在细菌中,水平基因转移通常由直接从细胞转移到细胞的共轭遗传元件介导。整合和结合元件(ICEs,也称为结合转座子)是位于宿主基因组内但可切除形成圆圈并通过结合转移到受体细胞的移动遗传元件。 ICEs促进了与发病机制,共生,代谢和抗生素抗性有关的基因的传播。尽管它很重要,但对于革兰氏阳性细菌的结合机制或转结合体成为供体的速度或频率有多了解。我们使用荧光显微镜实时观察了整合和结合元件ICE Bs1 枯草芽孢杆菌供体向受体细胞的转移。我们发现从供体到受体的DNA转移似乎发生在细胞极或任一细胞的侧向细胞表面。最重要的是,我们发现当ICE Bs1 被一条链中的1个细胞捕获时,它会通过其他顺序的共轭事件在链中的各个细胞之间迅速传播。该链内结合固有地比由于单个细胞之间偶然相遇而产生的结合更有效。许多细菌物种,包括病原体,共生生物,共生生物和固氮生物,都带有ICE并成链生长,通常作为微生物群落的一部分。有效的链内散布很可能是结合型DNA转移的普遍特征,并可以用来放大获得结合型移动遗传元件的细胞数量。 >重要:结合元件有助于水平基因转移和新性状的获得。它们主要负责在细菌群落中传播抗生素抗性。为了研究结合的细胞生物学,我们使用荧光显微镜实时观察了枯草芽孢杆菌细胞之间的结合DNA转移。与以前的预测会优先从供体细胞极发生转移的相反,我们发现DNA从供体到受体的转移似乎发生在细胞极或任一细胞的侧向细胞表面。最重要的是,我们发现当被链中的1个细胞获取时,结合DNA通过顺序的结合事件在链中的细胞之间迅速扩散。由于许多细菌物种会自然地在链中生长,因此这种链内转移可能是加速共轭元素在微生物群落内传播的常见机制。

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