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多核孢子有助于无性根肿菌的进化长寿。

Multinucleate spores contribute to evolutionary longevity of asexual glomeromycota.

机构信息

Department of Plant Pathology and Plant-Microbe Biology, Cornell University, Ithaca, NY 14853, USA.

出版信息

Am Nat. 2010 Apr;175(4):424-35. doi: 10.1086/650725.

Abstract

Arbuscular mycorrhizal fungi (Glomeromycota) are the dominant symbionts of land plants and one of the oldest multicellular lineages that exist without evidence of sexual reproduction. The mechanisms that protect these organisms from extinction due to accumulation of deleterious mutations in the absence of sexual recombination are unclear. Glomeromycota reproduce by spores containing hundreds of nuclei, which represents a departure from the typical eukaryotic developmental pattern, where a multicellular organism is re-created from a uninucleate propagule. To understand whether the multinucleate spore makeup may have contributed to the evolutionary success of Glomeromycota, we examined the dynamics of spore nuclei in Glomus etunicatum using live three-dimensional imaging and mathematical models. We show that the spores are populated by an influx of a stream of nuclei from the surrounding mycelium rather than by divisions of a single founder nucleus. We present evidence that mechanisms of selection are likely to operate at the level of individual nuclei. On the basis of mathematical analyses of the effects that these nuclear dynamics have on the population mutation load, we postulate that the developmental patterns of sporogenesis have adaptive significance for moderating the accumulation of deleterious mutations and may have contributed to the evolutionary longevity of Glomeromycota.

摘要

丛枝菌根真菌(Glomeromycota)是陆地植物的主要共生体,也是现存的没有有性生殖证据的最古老的多细胞谱系之一。由于缺乏有性重组,这些生物体因有害突变的积累而灭绝的保护机制尚不清楚。Glomeromycota 通过含有数百个细胞核的孢子繁殖,这与典型的真核生物发育模式不同,在典型的真核生物发育模式中,多细胞生物是由单核繁殖体重新创造的。为了了解多核孢子的组成是否有助于 Glomeromycota 的进化成功,我们使用活的三维成像和数学模型研究了 Glomus etunicatum 中孢子核的动态。我们表明,孢子是由来自周围菌丝的核流涌入而形成的,而不是由单个起始核的分裂形成的。我们提供的证据表明,选择机制可能在单个核的水平上起作用。基于对这些核动态对种群突变负荷影响的数学分析,我们假设孢子发生的发育模式对调节有害突变的积累具有适应性意义,这可能有助于 Glomeromycota 的进化长寿。

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