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木聚糖降解菌群中纳米嗜盐古菌的功能多样性

Functional diversity of nanohaloarchaea within xylan-degrading consortia.

作者信息

Reva Oleg, Messina Enzo, La Cono Violetta, Crisafi Francesca, Smedile Francesco, La Spada Gina, Marturano Laura, Selivanova Elena A, Rohde Manfred, Krupovic Mart, Yakimov Michail M

机构信息

Department of Biochemistry, Genetics and Microbiology, Centre for Bioinformatics and Computational Biology, University of Pretoria, Pretoria, South Africa.

National Council of Research, CNR, Rome, Italy.

出版信息

Front Microbiol. 2023 May 31;14:1182464. doi: 10.3389/fmicb.2023.1182464. eCollection 2023.

Abstract

Extremely halophilic representatives of the phylum Nanohaloarchaeota (members of the DPANN superphyla) are obligately associated with extremely halophilic archaea of the phylum (according to the GTDB taxonomy). Using culture-independent molecular techniques, their presence in various hypersaline ecosystems around the world has been confirmed over the past decade. However, the vast majority of nanohaloarchaea remain uncultivated, and thus their metabolic capabilities and ecophysiology are currently poorly understood. Using the (meta)genomic, transcriptomic, and DNA methylome platforms, the metabolism and functional prediction of the ecophysiology of two novel extremely halophilic symbiotic nanohaloarchaea (. Nanohalococcus occultus and . Nanohalovita haloferacivicina) stably cultivated in the laboratory as members of a xylose-degrading binary culture with a haloarchaeal host, , was determined. Like all known DPANN superphylum nanoorganisms, these new sugar-fermenting nanohaloarchaea lack many fundamental biosynthetic repertoires, making them exclusively dependent on their respective host for survival. In addition, given the cultivability of the new nanohaloarchaea, we managed to discover many unique features in these new organisms that have never been observed in nano-sized archaea both within the phylum . Nanohaloarchaeota and the entire superphylum DPANN. This includes the analysis of the expression of organism-specific non-coding regulatory (nc)RNAs (with an elucidation of their 2D-secondary structures) as well as profiling of DNA methylation. While some ncRNA molecules have been predicted with high confidence as RNAs of an archaeal signal recognition particle involved in delaying protein translation, others resemble the structure of ribosome-associated ncRNAs, although none belong to any known family. Moreover, the new nanohaloarchaea have very complex cellular defense mechanisms. In addition to the defense mechanism provided by the type II restriction-modification system, consisting of Dcm-like DNA methyltransferase and Mrr restriction endonuclease, . Nanohalococcus encodes an active type I-D CRISPR/Cas system, containing 77 spacers divided into two loci. Despite their diminutive genomes and as part of their host interaction mechanism, the genomes of new nanohaloarchaea do encode giant surface proteins, and one of them (9,409 amino acids long) is the largest protein of any sequenced nanohaloarchaea and the largest protein ever discovered in cultivated archaea.

摘要

纳米嗜盐古菌门(DPANN超门成员)的极端嗜盐代表与(根据GTDB分类法)盐杆菌门的极端嗜盐古菌有 obligately 关联。在过去十年中,利用不依赖培养的分子技术,已证实它们在世界各地的各种高盐生态系统中存在。然而,绝大多数纳米嗜盐古菌仍未培养成功,因此目前对它们的代谢能力和生态生理学了解甚少。利用(宏)基因组、转录组和DNA甲基化组平台,确定了在实验室中作为与盐生古菌宿主组成的木糖降解二元培养物成员而稳定培养的两种新型极端嗜盐共生纳米嗜盐古菌(隐匿纳米嗜盐球菌和嗜盐铁还原纳米嗜盐维他菌)的生态生理学的代谢和功能预测。像所有已知的DPANN超门纳米生物一样,这些新的糖发酵纳米嗜盐古菌缺乏许多基本的生物合成基因库,这使得它们完全依赖各自的宿主生存。此外,鉴于新的纳米嗜盐古菌的可培养性,我们设法在这些新生物中发现了许多在纳米嗜盐古菌门内以及整个DPANN超门的纳米古菌中从未观察到的独特特征。这包括对生物体特异性非编码调节(nc)RNA的表达分析(阐明其二维二级结构)以及DNA甲基化分析。虽然一些ncRNA分子已被高度自信地预测为参与延迟蛋白质翻译的古菌信号识别颗粒的RNA,但其他分子类似于核糖体相关ncRNA的结构,尽管它们都不属于任何已知家族。此外,新的纳米嗜盐古菌具有非常复杂的细胞防御机制。除了由类似Dcm的DNA甲基转移酶和Mrr限制性内切酶组成的II型限制修饰系统提供的防御机制外,隐匿纳米嗜盐球菌还编码一种活跃的I-D型CRISPR/Cas系统,包含77个间隔序列,分为两个位点。尽管它们的基因组很小,并且作为其宿主相互作用机制的一部分,但新的纳米嗜盐古菌的基因组确实编码巨大的表面蛋白,其中一个(长达9409个氨基酸)是已测序的任何纳米嗜盐古菌中最大的蛋白,也是在培养的古菌中发现的最大的蛋白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bb5/10266531/7c4c036eff47/fmicb-14-1182464-g0001.jpg

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