在地衣化的蓝藻中,中枢代谢和发育被重新连接

Diego Garfias-Gallegos, Carlos J Pardo-De la Hoz, Diane L Haughland, Nicolas Magain, Blanka Aguero, Jolanta Miadlikowska, François Lutzoni
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引用次数: 0

摘要

蓝藻是少数能够同时固定碳和氮的生物之一。这些代谢特征对蓝藻青衣共生至关重要,其中Nostoc为形成蓝藻青衣的真菌伙伴提供碳(葡萄糖)和氮(铵)。这种营养流动是由20世纪发表的开创性生化研究确立的。从那时起,蓝藻绿色素的代谢很少受到关注,地衣化诺斯托克的生理学基础的分子机制仍然是未知的。在这里,我们旨在阐明使Nostoc在蓝藻中的代谢作用的基因组和转录变化。本研究采用比较基因组学方法,对243个Nostoc s.l at基因组进行了分析。结合用蓝藻藻进行的转转录组实验。我们发现,光自养碳固定基因在地衣化的念珠菌中被上调。这可能导致更高的碳固定率,允许Nostoc向真菌伴侣提供碳,同时满足其自身的代谢需求。我们还发现,氨从褐藻向地衣形成真菌的转移有两种分子机制:(i)谷氨酰胺合成酶的转录下调,谷氨酰胺合成酶是褐藻同化氨的关键酶;(ii)假定的高亲和性铵渗透酶的频繁损失,这可能会降低Nostoc重新捕获泄漏铵的能力。最后,我们发现在地衣化的Nostoc中,运动性腺的发育被下调,这类似于Nostoc共生体在其植物寄主的共生腔中定殖后对运动性的抑制。我们的研究结果为组学时代蓝藻生态生理学的复兴铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Central metabolism and development are rewired in lichenized cyanobacteria
Nostoc cyanobacteria are among the few organisms capable of fixing both carbon and nitrogen. These metabolic features are essential for the cyanolichen symbiosis, where Nostoc supplies both carbon (as glucose) and nitrogen (as ammonium) to a cyanolichen-forming fungal partner. This nutrient flow was established by seminal biochemical studies published in the 20th century. Since then, cyanolichen metabolism has received little attention, and the molecular mechanisms that underlie the physiology of lichenized Nostoc remain mostly unknown. Here, we aimed to elucidate the genomic and transcriptional changes that enable Nostoc’s metabolic role in cyanolichens. We used comparative genomics across 243 genomes of Nostoc s. lat. Coupled with metatranscriptomic experiments using Peltigera cyanolichens. We found that genes for photoautotrophic carbon fixation are upregulated in lichenized Nostoc. This likely results in a higher rate of carbon fixation that allows Nostoc to provide carbon to the fungal partner while meeting its own metabolic needs. We also found that the transfer of ammonium from Nostoc to the lichen-forming fungus is facilitated by two molecular mechanisms: (i) transcriptional downregulation of glutamine synthetase, the key enzyme responsible for ammonium assimilation in Nostoc; and (ii) frequent losses of a putative high-affinity ammonium permease, which likely reduces Nostoc’s capacity to recapture leaked ammonium. Finally, we found that the development of motile hormogonia is downregulated in lichenized Nostoc, which resembles the repression of motility in Nostoc symbionts after they colonize symbiotic cavities of their plant hosts. Our results pave the way for a revival of cyanolichen ecophysiology in the omics era.
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