北美底部的微生物运动:数字全息显微镜和死亡谷国家公园恶水泉的基因组运动特征。

IF 3.5 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Astrobiology Pub Date : 2023-03-01 DOI:10.1089/ast.2022.0090
Carl Snyder, Jakob P Centlivre, Shrikant Bhute, Gözde Shipman, Ariel D Friel, Tomeu Viver, Marike Palmer, Konstantinos T Konstantinidis, Henry J Sun, Ramon Rossello-Mora, Jay Nadeau, Brian P Hedlund
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引用次数: 1

摘要

运动性广泛分布于整个生命之树,无论系统发育关系、生化组成或机制如何,都可以通过显微镜识别。因此,显微镜被认为是探测外星生命生物特征的潜在工具;然而,传统的光学显微镜不适合这一目的,因为它需要样品制备,涉及易碎的运动部件,并且具有有限的视野。在这项研究中,我们利用野外便携式数字全息显微镜(DHM)研究了死亡谷国家公园(Death Valley National Park)的咸水泉(Badwater Spring)的微生物运动,并利用16S rRNA基因扩增子测序和霰弹枪宏基因组学对DHM成像进行了补充。DHM鉴定了不同的形态,并区分了跑-反弹和跑-反弹类型的鞭毛运动。基于PICRUSt2和基于16S rRNA基因扩增子的文献预测用于预测36.0 ~ 60.1%的已鉴定类群的运动基因型/表型,预测的运动类群以Burkholderiaceae和Spirochaetota的成员为主。霰弹枪宏基因组证实了编码鞭毛运动的基因的丰度,而一个由Ralstonia宏基因组组装的基因组编码了一个完整的鞭毛基因簇。本研究展示了DHM在行星生命探测方面的潜力,首次进行了Badwater Spring和盐水池的微生物普查,并证实了极端环境下移动微生物类群的丰度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microbial Motility at the Bottom of North America: Digital Holographic Microscopy and Genomic Motility Signatures in Badwater Spring, Death Valley National Park.

Motility is widely distributed across the tree of life and can be recognized by microscopy regardless of phylogenetic affiliation, biochemical composition, or mechanism. Microscopy has thus been proposed as a potential tool for detection of biosignatures for extraterrestrial life; however, traditional light microscopy is poorly suited for this purpose, as it requires sample preparation, involves fragile moving parts, and has a limited volume of view. In this study, we deployed a field-portable digital holographic microscope (DHM) to explore microbial motility in Badwater Spring, a saline spring in Death Valley National Park, and complemented DHM imaging with 16S rRNA gene amplicon sequencing and shotgun metagenomics. The DHM identified diverse morphologies and distinguished run-reverse-flick and run-reverse types of flagellar motility. PICRUSt2- and literature-based predictions based on 16S rRNA gene amplicons were used to predict motility genotypes/phenotypes for 36.0-60.1% of identified taxa, with the predicted motile taxa being dominated by members of Burkholderiaceae and Spirochaetota. A shotgun metagenome confirmed the abundance of genes encoding flagellar motility, and a Ralstonia metagenome-assembled genome encoded a full flagellar gene cluster. This study demonstrates the potential of DHM for planetary life detection, presents the first microbial census of Badwater Spring and brine pool, and confirms the abundance of mobile microbial taxa in an extreme environment.

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来源期刊
Astrobiology
Astrobiology 生物-地球科学综合
CiteScore
7.70
自引率
11.90%
发文量
100
审稿时长
3 months
期刊介绍: Astrobiology is the most-cited peer-reviewed journal dedicated to the understanding of life''s origin, evolution, and distribution in the universe, with a focus on new findings and discoveries from interplanetary exploration and laboratory research. Astrobiology coverage includes: Astrophysics; Astropaleontology; Astroplanets; Bioastronomy; Cosmochemistry; Ecogenomics; Exobiology; Extremophiles; Geomicrobiology; Gravitational biology; Life detection technology; Meteoritics; Planetary geoscience; Planetary protection; Prebiotic chemistry; Space exploration technology; Terraforming
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