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Symbiosis as an adaptive process and source of phenotypic complexity

机译:共生作为适应性过程和表型复杂性的来源

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Genomics has revealed that inheritance systems of separate species are often not well segregated: genes and capabilities that evolve in one lineage are often stably acquired by another lineage. Although direct gene transfer between species has occurred at some level in all major groups, it appears to be far more frequent in prokaryotes than in multicellular eukaryotes. An alternative to incorporating novel genes into a recipient genome is acquiring a stable, possibly heritable, symbiotic association and thus enjoying benefits of complementary metabolic capabilities. These kinds of symbioses have arisen frequently in animals; for example, many insect groups have diversified on the basis of symbiotic associations acquired early in their evolutionary histories. The resulting associations are highly complex, often involving specialized cell types and organs, developmental mechanisms that ensure transfer of symbionts between generations, and mechanisms for controlling symbiont proliferation and location. The genomes of long-term obligate symbionts often undergo irreversible gene loss and deterioration even as hosts evolve dependence on them. In some cases, animal genomes may have acquired genes from symbionts, mirroring the gene uptake from mitochondrial and plastid genomes. Multiple symbionts often coexist in the same host, resulting in coadaptation among several phylogenetically distant genomes.
机译:基因组学表明,不同物种的遗传系统通常没有很好地分离:在一个谱系中进化的基因和能力通常被另一个谱系稳定地获得。尽管在所有主要群体中物种间的直接基因转移都已发生,但在原核生物中似乎比在多细胞真核生物中更为频繁。将新基因整合到受体基因组中的另一种方法是获得稳定的,可能遗传的共生关联,从而享受互补代谢功能的好处。这些共生体在动物中经常出现。例如,许多昆虫群是根据其进化历史早期获得的共生关系而多样化的。由此产生的关联是高度复杂的,通常涉及专门的细胞类型和器官,确保共生体在世代之间转移的发育机制以及控制共生体增殖和定位的机制。长期专性共生体的基因组经常遭受不可逆转的基因损失和退化,即使宿主对它们的依赖性增强。在某些情况下,动物基因组可能已经从共生体中获取了基因,这反映了线粒体和质体基因组的基因吸收。多个共生体通常共存于同一宿主中,从而导致几个系统发生距离遥远的基因组之间的共适应。

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