Suppr超能文献

性吸引力:真菌信息素/受体系统的作用(综述)

Sexual attraction: on the role of fungal pheromone/receptor systems (A review).

作者信息

Kothe Erika

机构信息

Institute of Microbiology, Friedrich-Schiller-Universität, Neugasse 25, D-07743 Jena, Germany.

出版信息

Acta Microbiol Immunol Hung. 2008 Jun;55(2):125-43. doi: 10.1556/AMicr.55.2008.2.5.

Abstract

Pheromones have been detected in all fungal phylogenetic lineages. This came as a surprise, as the general role of pheromones in mate attraction was not envisioned for some fungi. Pheromones and pheromone receptor genes have been identified, however, in members of all true fungal lineages, and even for mycelia forming organisms of plant and amoeba lineages, like oomycetes and myxomycetes. The mating systems and genes governing the mating type are different in fungi, ranging from bipolar with two opposite mating types to tetrapolar mating systems (with four possible mating outcomes, only one of which leads to fertile sexual development) in homobasidioymcetes with more than 23,000 mating types occurring in nature. Pheromones and receptors specifically recognizing these pheromones have evolved with slightly different functions in these different systems. This review is dedicated to follow the evolution of pheromone/receptor systems from simple, biallelic bipolar systems to multiallelic, tetrapolar versions and to explain the slightly different functions the pheromone recognition and subsequent signal transduction cascades within the fungal kingdom. The biotechnological implications of a detailed understanding of mating systems for biological control and plant protection, in medicine, and in mushroom breeding are discussed.

摘要

在所有真菌系统发育谱系中都检测到了信息素。这一发现令人惊讶,因为一些真菌并未被认为信息素在配偶吸引中具有普遍作用。然而,在所有真正的真菌谱系成员中,甚至在植物和变形虫谱系的菌丝体形成生物体(如卵菌和黏菌)中,都已鉴定出信息素和信息素受体基因。真菌中的交配系统和控制交配类型的基因各不相同,从具有两种相反交配类型的双极性到同担子菌中的四极性交配系统(有四种可能的交配结果,其中只有一种会导致可育的有性发育),自然界中存在超过23000种交配类型。在这些不同的系统中,信息素和特异性识别这些信息素的受体已经进化出略有不同的功能。本综述致力于追踪信息素/受体系统从简单的双等位基因双极性系统到多等位基因四极性系统的进化过程,并解释真菌王国中信息素识别和随后的信号转导级联反应的略有不同的功能。还讨论了详细了解交配系统在生物防治、植物保护、医学和蘑菇育种方面的生物技术意义。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验