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从氮循环肠道共生体群的龟蚁中发现的一种新共生种的生理和进化背景。

Physiological and evolutionary contexts of a new symbiotic species from the nitrogen-recycling gut community of turtle ants.

机构信息

Department of Biology, Drexel University, 3245 Chestnut St., Philadelphia, PA, 19104, USA.

State Key Laboratory of Earth Surface Processes and Resource Ecology and Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, College of Life Sciences, Beijing Normal University, 100875, Beijing, China.

出版信息

ISME J. 2023 Oct;17(10):1751-1764. doi: 10.1038/s41396-023-01490-1. Epub 2023 Aug 9.

Abstract

While genome sequencing has expanded our knowledge of symbiosis, role assignment within multi-species microbiomes remains challenging due to genomic redundancy and the uncertainties of in vivo impacts. We address such questions, here, for a specialized nitrogen (N) recycling microbiome of turtle ants, describing a new genus and species of gut symbiont-Ischyrobacter davidsoniae (Betaproteobacteria: Burkholderiales: Alcaligenaceae)-and its in vivo physiological context. A re-analysis of amplicon sequencing data, with precisely assigned Ischyrobacter reads, revealed a seemingly ubiquitous distribution across the turtle ant genus Cephalotes, suggesting ≥50 million years since domestication. Through new genome sequencing, we also show that divergent I. davidsoniae lineages are conserved in their uricolytic and urea-generating capacities. With phylogenetically refined definitions of Ischyrobacter and separately domesticated Burkholderiales symbionts, our FISH microscopy revealed a distinct niche for I. davidsoniae, with dense populations at the anterior ileum. Being positioned at the site of host N-waste delivery, in vivo metatranscriptomics and metabolomics further implicate I. davidsoniae within a symbiont-autonomous N-recycling pathway. While encoding much of this pathway, I. davidsoniae expressed only a subset of the requisite steps in mature adult workers, including the penultimate step deriving urea from allantoate. The remaining steps were expressed by other specialized gut symbionts. Collectively, this assemblage converts inosine, made from midgut symbionts, into urea and ammonia in the hindgut. With urea supporting host amino acid budgets and cuticle synthesis, and with the ancient nature of other active N-recyclers discovered here, I. davidsoniae emerges as a central player in a conserved and impactful, multipartite symbiosis.

摘要

虽然基因组测序扩展了我们对共生关系的认识,但由于基因组冗余和体内影响的不确定性,多物种微生物组中的角色分配仍然具有挑战性。我们在这里解决了龟蚁专门氮(N)回收微生物组中的此类问题,描述了一种新的肠道共生菌——戴维森氏异杆菌(β变形菌门:伯克霍尔德氏菌目:产碱杆菌科)及其体内生理环境。通过对扩增子测序数据的重新分析,精确分配了戴维森氏异杆菌的读段,发现其在龟蚁属 Cephalotes 中似乎普遍存在,这表明自驯化以来已有超过 5000 万年的时间。通过新的基因组测序,我们还表明,不同的 I. davidsoniae 谱系在尿酸分解和尿素生成能力上保持保守。通过对 Ischyrobacter 进行系统发育上的精细定义,并分别对驯化的伯克霍尔德氏菌共生体进行定义,我们的 FISH 显微镜显示了 I. davidsoniae 的一个独特生态位,在前回肠处存在密集的种群。由于位于宿主 N 废物输送的部位,体内代谢组学和代谢组学进一步将 I. davidsoniae 纳入共生体自主的 N 回收途径。虽然编码了该途径的大部分内容,但 I. davidsoniae 在成熟成年工蚁中仅表达了所需步骤的一部分,包括从尿囊酸衍生尿素的倒数第二步。其余步骤由其他专门的肠道共生体表达。总的来说,这个组合将从中肠共生体产生的肌苷转化为尿素和氨在回肠中。由于尿素支持宿主氨基酸预算和角质层合成,并且这里发现的其他活跃的 N 回收者具有古老的性质,因此 I. davidsoniae 成为保守且有影响力的多部分共生关系中的核心参与者。

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