4.8 Article

Evolutionary stasis of a deep subsurface microbial lineage

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ISME JOURNAL
卷 15, 期 10, 页码 2830-2842

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SPRINGERNATURE
DOI: 10.1038/s41396-021-00965-3

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资金

  1. NSF [DEB-1441717, OIA-1826734]
  2. NASA Astrobiology Institute award [NNA13AA92A]
  3. Russian Science Foundation [14-14-01016, 19-14-00245]
  4. Nevada NASA Space Grant Consortium Graduate Fellowship [NNX15AI02H]
  5. Russian Science Foundation [19-14-00245, 14-14-01016] Funding Source: Russian Science Foundation
  6. NASA [475664, 803929, NNX15AI02H, NNA13AA92A] Funding Source: Federal RePORTER

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Recent research has found that the genomes of sulfate-reducing bacteria CDA from Africa, North America, and Eurasia are highly conserved, suggesting minimal evolution in these populations since their separation. This is likely due to high-fidelity DNA replication and repair mechanisms.
Sulfate-reducing bacteria Candidatus Desulforudis audaxviator (CDA) were originally discovered in deep fracture fluids accessed via South African gold mines and have since been found in geographically widespread deep subsurface locations. In order to constrain models for subsurface microbial evolution, we compared CDA genomes from Africa, North America and Eurasia using single cell genomics. Unexpectedly, 126 partial single amplified genomes from the three continents, a complete genome from of an isolate from Eurasia, and metagenome-assembled genomes from Africa and Eurasia shared >99.2% average nucleotide identity, low frequency of SNP's, and near-perfectly conserved prophages and CRISPRs. Our analyses reject sample cross-contamination, recent natural dispersal, and unusually strong purifying selection as likely explanations for these unexpected results. We therefore conclude that the analyzed CDA populations underwent only minimal evolution since their physical separation, potentially as far back as the breakup of Pangea between 165 and 55 Ma ago. High-fidelity DNA replication and repair mechanisms are the most plausible explanation for the highly conserved genome of CDA. CDA presents a stark contrast to the current model organisms in microbial evolutionary studies, which often develop adaptive traits over far shorter periods of time.

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