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Targeted Bacterial Immunity Buffers Phage Diversity

机译:靶向细菌免疫缓冲液噬菌体多样性

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摘要

Bacteria have evolved diverse defense mechanisms that allow them to fight viral attacks. One such mechanism, the clustered, regularly interspaced, short palindromic repeat (CRISPR) system, is an adaptive immune system consisting of genetic loci that can take up genetic material from invasive elements (viruses and plasmids) and later use them to reject the returning invaders. It remains an open question how, despite the ongoing evolution of attack and defense mechanisms, bacteria and viral phages manage to coexist. Using a simple mathematical model and a two-dimensional numerical simulation, we found that CRISPR adaptive immunity allows for robust phage-bacterium coexistence even when the number of virus species far exceeds the capacity of CRISPR-encoded genetic memory. Coexistence is predicted to be a consequence of the presence of many interdependent species that stress but do not overrun the bacterial defense system.
机译:细菌已经进化出多种防御机制,可以抵抗病毒攻击。一种这样的机制是成簇的,规则间隔的短回文重复(CRISPR)系统,是一种自适应免疫系统,由遗传基因座组成,该基因座可以从侵入性元素(病毒和质粒)中吸收遗传物质,然后使用它们来拒绝返回的入侵者。尽管攻击和防御机制不断发展,细菌和病毒噬菌体如何共存仍是一个悬而未决的问题。使用简单的数学模型和二维数值模拟,我们发现,即使病毒种的数量远远超过了CRISPR编码的遗传记忆的能力,CRISPR自适应免疫也可以实现强大的噬菌体-细菌共存。预计共存是许多相互依存的物种的存在的结果,这些物种相互胁迫但不会使细菌防御系统超支。

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