植物中蓝藻共生的进化基因组学启示。

Quantitative Plant Biology Pub Date : 2022-08-08 eCollection Date: 2022-01-01 DOI:10.1017/qpb.2022.3
Sophie de Vries, Jan de Vries
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引用次数: 0

摘要

光合作用,即固定大气中二氧化碳的能力,是真核生物通过共生获得的:植物和藻类的质体来自于超过 15 亿年前开始的蓝藻共生,并开辟了一条独特的进化之路。这就是植物和藻类的进化起源。一些现存的陆生植物从共生蓝藻中获得了额外的生化帮助;这些植物与丝状蓝藻结合,固定大气中的氮。在陆生植物所有主要品系的部分物种中都能找到这种相互作用的实例。最近,基因组和转录组数据的增加为了解这些相互作用的分子基础提供了新的视角。此外,角草Anthoceros已成为蓝藻-植物相互作用分子生物学的模型系统。在此,我们将回顾这些由高通量数据驱动的研究进展,并指出它们在这些不同共生关系中产生一般模式的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evolutionary genomic insights into cyanobacterial symbioses in plants.

Evolutionary genomic insights into cyanobacterial symbioses in plants.

Evolutionary genomic insights into cyanobacterial symbioses in plants.

Evolutionary genomic insights into cyanobacterial symbioses in plants.

Photosynthesis, the ability to fix atmospheric carbon dioxide, was acquired by eukaryotes through symbiosis: the plastids of plants and algae resulted from a cyanobacterial symbiosis that commenced more than 1.5 billion years ago and has chartered a unique evolutionary path. This resulted in the evolutionary origin of plants and algae. Some extant land plants have recruited additional biochemical aid from symbiotic cyanobacteria; these plants associate with filamentous cyanobacteria that fix atmospheric nitrogen. Examples of such interactions can be found in select species from across all major lineages of land plants. The recent rise in genomic and transcriptomic data has provided new insights into the molecular foundation of these interactions. Furthermore, the hornwort Anthoceros has emerged as a model system for the molecular biology of cyanobacteria-plant interactions. Here, we review these developments driven by high-throughput data and pinpoint their power to yield general patterns across these diverse symbioses.

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