亲核生物自然种群中的自适应辐射:创新是关键
Michiel Vos1,2, Daniel Padfield1,2, Christopher Quince3,4
1European Centre for Environment and Human Health, University of Exeter Medical School, Environment and Sustainability Institute, Treliever Road, Penryn Campus, Penryn, TR10 9FE, United Kingdom.
FEMS microbiology ecology
|November 23, 2023
概括
由关键创新驱动的前核细胞适应性辐射产生了细菌多样性. 如果没有重组障碍,利基专业化可能会导致开放的基因组,而不是物种化.
科学领域:
- 微生物学 微生物学
- 进化生物学 进化生物学
- 基因组学就是基因组学.
背景情况:
- Prokaryotic 生物多样性是巨大的,对生态系统和人类健康至关重要,但与真核生物相比,人们对其了解甚少.
- 适应性辐射是动物和植物宏观多样性的关键驱动力,但它在核细胞中的作用较少被探索.
研究的目的:
- 调查生态机会的潜力,以推动细菌的多样化爆发.
- 探索启动和维持 prokaryotes 适应性辐射的机制.
主要方法:
- 概念审查和综合现有关于 prokaryotic 进化和多样化的研究.
- 对适应性辐射应用到细菌系的理论框架的分析.
主要成果:
- 横向获得的关键创新可以通过启用利基入侵来启动 prokaryotic 适应辐射.
- 通过关键的创新,促进了新的适应区的殖民化,可能有利于某些 prokaryotic 群体.
- 细菌中没有重组障碍,可能会导致利基特异性基因积累和开放的基因组,而不是物种化.
结论:
- 适应性辐射是一种产生 prokaryotic 多样性的合理机制,由关键创新启动.
- 细菌多样化的进化轨迹可能因水平基因转移和重组缺失等因素而与真核生物不同.
- 开放的泛基体代表了细菌中缺少生殖隔离的利基专业化的潜在结果.
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