| Literature DB >> 35054406 |
Matthew Kelbrick1,2, James A W Oliver1, Nisha K Ramkissoon3, Amy Dugdale4,5, Ben P Stephens3, Ezgi Kucukkilic-Stephens3, Susanne P Schwenzer3, André Antunes6,7, Michael C Macey3.
Abstract
The waters that were present on early Mars may have been habitable. Characterising environments analogous to these waters and investigating the viability of their microbes under simulated martian chemical conditions is key to developing hypotheses on this habitability and potential biosignature formation. In this study, we examined the viability of microbes from the Anderton Brine Springs (United Kingdom) under simulated martian chemistries designed to simulate the chemical conditions of water that may have existed during the Hesperian. Associated changes in the fluid chemistries were also tested using inductively coupled plasma-optical emission spectroscopy (ICP-OES). The tested Hesperian fluid chemistries were shown to be habitable, supporting the growth of all of the Anderton Brine Spring isolates. However, inter and intra-generic variation was observed both in the ability of the isolates to tolerate more concentrated fluids and in their impact on the fluid chemistry. Therefore, whilst this study shows microbes from fluctuating brines can survive and grow in simulated martian water chemistry, further investigations are required to further define the potential habitability under past martian conditions.Entities:
Keywords: Mars; astrobiology; martian; saline; simulation
Year: 2021 PMID: 35054406 PMCID: PMC8781782 DOI: 10.3390/life12010012
Source DB: PubMed Journal: Life (Basel) ISSN: 2075-1729
Figure 1Aerial image of the Anderton Brine Springs depicting spring locations ((A) Source: Google Images 2017). A1A, A1B, A1C, A3A and A3B designate sampling points.; brine pool A2 ((B) approximately 1.5 m in diameter).
16S rRNA gene sequencing results of isolates from the Anderton Brine Springs, including data on isolation site, closest relative of isolate, and the strain’s ability to grow in the absence of NaCl with Yeast Extract as the sole carbon source.
| Strain | Isolation Site | Isolate Accession | Genus with Highest | Closed Relative | Similarity to Closest | Growth at 0% NaCl |
|---|---|---|---|---|---|---|
| MKS3 | A1C | MW132413 | MK712419.1 | 100% | + | |
| MKS8 | A1B | MW130959 | MK696244.1 | 100% | + | |
| MKS9 | A3B | MW132410 | MK618601.1 | 100% | + | |
| MKS13 | A3B | MW131453 | MK120203.1 | 100% | + | |
| MKS15 | A1B | MW130887 | HF678757.1 | 99% | - | |
| MKS16 | A2 | MW130884 | NR_042255.1 | 100% | - | |
| MKS19 | A2 | MW131523 | CP024811.1 | 100% | + | |
| MKS20 | A1B | MW130885 | NR_156090.1 | 97.5% | - | |
| MKS21 | A1B | MW131554 | MK696244.1 | 100% | - | |
| MKS22 | A1B | MW134719 | JN791338.1 | 99% | - | |
| MKS23 | A1B | MW132418 | MH266164.1 | 99% | - | |
| MKS24 | A1B | MW132419 | LT601323.2 | 99% | - | |
| MKS28 | A2 | MW131455 | MK618601.1 | 100% | + | |
| MKS29 | A1C | MW130923 | MG575987.1 | 99% | + |
Figure 2Growth curve of selected strains from the Anderton Brine Springs grown in Rocknest fluids at concentrations of 0, 10, 50, 90, and 100%. (A–G) subfigures represent the individual strains. All strains were grown in duplicate with the average optical density used to calculate the growth curves.